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/*
 * INET		An implementation of the TCP/IP protocol suite for the LINUX
 *		operating system.  INET is implemented using the  BSD Socket
 *		interface as the means of communication with the user level.
 *
 *		Implementation of the Transmission Control Protocol(TCP).
 *
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 * Authors:	Ross Biro
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 *		Fred N. van Kempen, <waltje@uWalt.NL.Mugnet.ORG>
 *		Mark Evans, <evansmp@uhura.aston.ac.uk>
 *		Corey Minyard <wf-rch!minyard@relay.EU.net>
 *		Florian La Roche, <flla@stud.uni-sb.de>
 *		Charles Hedrick, <hedrick@klinzhai.rutgers.edu>
 *		Linus Torvalds, <torvalds@cs.helsinki.fi>
 *		Alan Cox, <gw4pts@gw4pts.ampr.org>
 *		Matthew Dillon, <dillon@apollo.west.oic.com>
 *		Arnt Gulbrandsen, <agulbra@nvg.unit.no>
 *		Jorge Cwik, <jorge@laser.satlink.net>
 */

/*
 * Changes:
 *		Pedro Roque	:	Fast Retransmit/Recovery.
 *					Two receive queues.
 *					Retransmit queue handled by TCP.
 *					Better retransmit timer handling.
 *					New congestion avoidance.
 *					Header prediction.
 *					Variable renaming.
 *
 *		Eric		:	Fast Retransmit.
 *		Randy Scott	:	MSS option defines.
 *		Eric Schenk	:	Fixes to slow start algorithm.
 *		Eric Schenk	:	Yet another double ACK bug.
 *		Eric Schenk	:	Delayed ACK bug fixes.
 *		Eric Schenk	:	Floyd style fast retrans war avoidance.
 *		David S. Miller	:	Don't allow zero congestion window.
 *		Eric Schenk	:	Fix retransmitter so that it sends
 *					next packet on ack of previous packet.
 *		Andi Kleen	:	Moved open_request checking here
 *					and process RSTs for open_requests.
 *		Andi Kleen	:	Better prune_queue, and other fixes.
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 *		Andrey Savochkin:	Fix RTT measurements in the presence of
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 *					timestamps.
 *		Andrey Savochkin:	Check sequence numbers correctly when
 *					removing SACKs due to in sequence incoming
 *					data segments.
 *		Andi Kleen:		Make sure we never ack data there is not
 *					enough room for. Also make this condition
 *					a fatal error if it might still happen.
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 *		Andi Kleen:		Add tcp_measure_rcv_mss to make
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 *					connections with MSS<min(MTU,ann. MSS)
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 *					work without delayed acks.
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 *		Andi Kleen:		Process packets with PSH set in the
 *					fast path.
 *		J Hadi Salim:		ECN support
 *	 	Andrei Gurtov,
 *		Pasi Sarolahti,
 *		Panu Kuhlberg:		Experimental audit of TCP (re)transmission
 *					engine. Lots of bugs are found.
 *		Pasi Sarolahti:		F-RTO for dealing with spurious RTOs
 */

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#define pr_fmt(fmt) "TCP: " fmt

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#include <linux/mm.h>
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#include <linux/slab.h>
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#include <linux/module.h>
#include <linux/sysctl.h>
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#include <linux/kernel.h>
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#include <net/dst.h>
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#include <net/tcp.h>
#include <net/inet_common.h>
#include <linux/ipsec.h>
#include <asm/unaligned.h>
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#include <net/netdma.h>
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int sysctl_tcp_timestamps __read_mostly = 1;
int sysctl_tcp_window_scaling __read_mostly = 1;
int sysctl_tcp_sack __read_mostly = 1;
int sysctl_tcp_fack __read_mostly = 1;
int sysctl_tcp_reordering __read_mostly = TCP_FASTRETRANS_THRESH;
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EXPORT_SYMBOL(sysctl_tcp_reordering);
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int sysctl_tcp_ecn __read_mostly = 2;
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EXPORT_SYMBOL(sysctl_tcp_ecn);
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int sysctl_tcp_dsack __read_mostly = 1;
int sysctl_tcp_app_win __read_mostly = 31;
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int sysctl_tcp_adv_win_scale __read_mostly = 1;
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EXPORT_SYMBOL(sysctl_tcp_adv_win_scale);
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/* rfc5961 challenge ack rate limiting */
int sysctl_tcp_challenge_ack_limit = 100;

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int sysctl_tcp_stdurg __read_mostly;
int sysctl_tcp_rfc1337 __read_mostly;
int sysctl_tcp_max_orphans __read_mostly = NR_FILE;
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int sysctl_tcp_frto __read_mostly = 2;
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int sysctl_tcp_frto_response __read_mostly;
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int sysctl_tcp_nometrics_save __read_mostly;
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int sysctl_tcp_thin_dupack __read_mostly;

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int sysctl_tcp_moderate_rcvbuf __read_mostly = 1;
int sysctl_tcp_abc __read_mostly;
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#define FLAG_DATA		0x01 /* Incoming frame contained data.		*/
#define FLAG_WIN_UPDATE		0x02 /* Incoming ACK was a window update.	*/
#define FLAG_DATA_ACKED		0x04 /* This ACK acknowledged new data.		*/
#define FLAG_RETRANS_DATA_ACKED	0x08 /* "" "" some of which was retransmitted.	*/
#define FLAG_SYN_ACKED		0x10 /* This ACK acknowledged SYN.		*/
#define FLAG_DATA_SACKED	0x20 /* New SACK.				*/
#define FLAG_ECE		0x40 /* ECE in this ACK				*/
#define FLAG_SLOWPATH		0x100 /* Do not skip RFC checks for window update.*/
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#define FLAG_ONLY_ORIG_SACKED	0x200 /* SACKs only non-rexmit sent before RTO */
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#define FLAG_SND_UNA_ADVANCED	0x400 /* Snd_una was changed (!= FLAG_DATA_ACKED) */
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#define FLAG_DSACKING_ACK	0x800 /* SACK blocks contained D-SACK info */
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#define FLAG_NONHEAD_RETRANS_ACKED	0x1000 /* Non-head rexmitted data was ACKed */
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#define FLAG_SACK_RENEGING	0x2000 /* snd_una advanced to a sacked seq */
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#define FLAG_ACKED		(FLAG_DATA_ACKED|FLAG_SYN_ACKED)
#define FLAG_NOT_DUP		(FLAG_DATA|FLAG_WIN_UPDATE|FLAG_ACKED)
#define FLAG_CA_ALERT		(FLAG_DATA_SACKED|FLAG_ECE)
#define FLAG_FORWARD_PROGRESS	(FLAG_ACKED|FLAG_DATA_SACKED)
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#define FLAG_ANY_PROGRESS	(FLAG_FORWARD_PROGRESS|FLAG_SND_UNA_ADVANCED)
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#define TCP_REMNANT (TCP_FLAG_FIN|TCP_FLAG_URG|TCP_FLAG_SYN|TCP_FLAG_PSH)
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#define TCP_HP_BITS (~(TCP_RESERVED_BITS|TCP_FLAG_PSH))
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/* Adapt the MSS value used to make delayed ack decision to the
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 * real world.
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 */
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static void tcp_measure_rcv_mss(struct sock *sk, const struct sk_buff *skb)
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{
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	struct inet_connection_sock *icsk = inet_csk(sk);
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	const unsigned int lss = icsk->icsk_ack.last_seg_size;
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	unsigned int len;
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	icsk->icsk_ack.last_seg_size = 0;
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	/* skb->len may jitter because of SACKs, even if peer
	 * sends good full-sized frames.
	 */
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	len = skb_shinfo(skb)->gso_size ? : skb->len;
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	if (len >= icsk->icsk_ack.rcv_mss) {
		icsk->icsk_ack.rcv_mss = len;
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	} else {
		/* Otherwise, we make more careful check taking into account,
		 * that SACKs block is variable.
		 *
		 * "len" is invariant segment length, including TCP header.
		 */
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		len += skb->data - skb_transport_header(skb);
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		if (len >= TCP_MSS_DEFAULT + sizeof(struct tcphdr) ||
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		    /* If PSH is not set, packet should be
		     * full sized, provided peer TCP is not badly broken.
		     * This observation (if it is correct 8)) allows
		     * to handle super-low mtu links fairly.
		     */
		    (len >= TCP_MIN_MSS + sizeof(struct tcphdr) &&
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		     !(tcp_flag_word(tcp_hdr(skb)) & TCP_REMNANT))) {
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			/* Subtract also invariant (if peer is RFC compliant),
			 * tcp header plus fixed timestamp option length.
			 * Resulting "len" is MSS free of SACK jitter.
			 */
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			len -= tcp_sk(sk)->tcp_header_len;
			icsk->icsk_ack.last_seg_size = len;
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			if (len == lss) {
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				icsk->icsk_ack.rcv_mss = len;
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				return;
			}
		}
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		if (icsk->icsk_ack.pending & ICSK_ACK_PUSHED)
			icsk->icsk_ack.pending |= ICSK_ACK_PUSHED2;
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		icsk->icsk_ack.pending |= ICSK_ACK_PUSHED;
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	}
}

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static void tcp_incr_quickack(struct sock *sk)
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{
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	struct inet_connection_sock *icsk = inet_csk(sk);
	unsigned quickacks = tcp_sk(sk)->rcv_wnd / (2 * icsk->icsk_ack.rcv_mss);
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	if (quickacks == 0)
		quickacks = 2;
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	if (quickacks > icsk->icsk_ack.quick)
		icsk->icsk_ack.quick = min(quickacks, TCP_MAX_QUICKACKS);
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}

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static void tcp_enter_quickack_mode(struct sock *sk)
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{
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	struct inet_connection_sock *icsk = inet_csk(sk);
	tcp_incr_quickack(sk);
	icsk->icsk_ack.pingpong = 0;
	icsk->icsk_ack.ato = TCP_ATO_MIN;
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}

/* Send ACKs quickly, if "quick" count is not exhausted
 * and the session is not interactive.
 */

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static inline int tcp_in_quickack_mode(const struct sock *sk)
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{
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	const struct inet_connection_sock *icsk = inet_csk(sk);
	return icsk->icsk_ack.quick && !icsk->icsk_ack.pingpong;
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}

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static inline void TCP_ECN_queue_cwr(struct tcp_sock *tp)
{
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	if (tp->ecn_flags & TCP_ECN_OK)
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		tp->ecn_flags |= TCP_ECN_QUEUE_CWR;
}

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static inline void TCP_ECN_accept_cwr(struct tcp_sock *tp, const struct sk_buff *skb)
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{
	if (tcp_hdr(skb)->cwr)
		tp->ecn_flags &= ~TCP_ECN_DEMAND_CWR;
}

static inline void TCP_ECN_withdraw_cwr(struct tcp_sock *tp)
{
	tp->ecn_flags &= ~TCP_ECN_DEMAND_CWR;
}

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static inline void TCP_ECN_check_ce(struct tcp_sock *tp, const struct sk_buff *skb)
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{
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	if (!(tp->ecn_flags & TCP_ECN_OK))
		return;

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	switch (TCP_SKB_CB(skb)->ip_dsfield & INET_ECN_MASK) {
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	case INET_ECN_NOT_ECT:
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		/* Funny extension: if ECT is not set on a segment,
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		 * and we already seen ECT on a previous segment,
		 * it is probably a retransmit.
		 */
		if (tp->ecn_flags & TCP_ECN_SEEN)
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			tcp_enter_quickack_mode((struct sock *)tp);
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		break;
	case INET_ECN_CE:
		tp->ecn_flags |= TCP_ECN_DEMAND_CWR;
		/* fallinto */
	default:
		tp->ecn_flags |= TCP_ECN_SEEN;
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	}
}

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static inline void TCP_ECN_rcv_synack(struct tcp_sock *tp, const struct tcphdr *th)
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{
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	if ((tp->ecn_flags & TCP_ECN_OK) && (!th->ece || th->cwr))
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		tp->ecn_flags &= ~TCP_ECN_OK;
}

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static inline void TCP_ECN_rcv_syn(struct tcp_sock *tp, const struct tcphdr *th)
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{
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	if ((tp->ecn_flags & TCP_ECN_OK) && (!th->ece || !th->cwr))
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		tp->ecn_flags &= ~TCP_ECN_OK;
}

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static inline int TCP_ECN_rcv_ecn_echo(const struct tcp_sock *tp, const struct tcphdr *th)
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{
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	if (th->ece && !th->syn && (tp->ecn_flags & TCP_ECN_OK))
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		return 1;
	return 0;
}

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/* Buffer size and advertised window tuning.
 *
 * 1. Tuning sk->sk_sndbuf, when connection enters established state.
 */

static void tcp_fixup_sndbuf(struct sock *sk)
{
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	int sndmem = SKB_TRUESIZE(tcp_sk(sk)->rx_opt.mss_clamp + MAX_TCP_HEADER);
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	sndmem *= TCP_INIT_CWND;
	if (sk->sk_sndbuf < sndmem)
		sk->sk_sndbuf = min(sndmem, sysctl_tcp_wmem[2]);
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}

/* 2. Tuning advertised window (window_clamp, rcv_ssthresh)
 *
 * All tcp_full_space() is split to two parts: "network" buffer, allocated
 * forward and advertised in receiver window (tp->rcv_wnd) and
 * "application buffer", required to isolate scheduling/application
 * latencies from network.
 * window_clamp is maximal advertised window. It can be less than
 * tcp_full_space(), in this case tcp_full_space() - window_clamp
 * is reserved for "application" buffer. The less window_clamp is
 * the smoother our behaviour from viewpoint of network, but the lower
 * throughput and the higher sensitivity of the connection to losses. 8)
 *
 * rcv_ssthresh is more strict window_clamp used at "slow start"
 * phase to predict further behaviour of this connection.
 * It is used for two goals:
 * - to enforce header prediction at sender, even when application
 *   requires some significant "application buffer". It is check #1.
 * - to prevent pruning of receive queue because of misprediction
 *   of receiver window. Check #2.
 *
 * The scheme does not work when sender sends good segments opening
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 * window and then starts to feed us spaghetti. But it should work
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 * in common situations. Otherwise, we have to rely on queue collapsing.
 */

/* Slow part of check#2. */
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static int __tcp_grow_window(const struct sock *sk, const struct sk_buff *skb)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	/* Optimize this! */
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	int truesize = tcp_win_from_space(skb->truesize) >> 1;
	int window = tcp_win_from_space(sysctl_tcp_rmem[2]) >> 1;
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	while (tp->rcv_ssthresh <= window) {
		if (truesize <= skb->len)
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			return 2 * inet_csk(sk)->icsk_ack.rcv_mss;
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		truesize >>= 1;
		window >>= 1;
	}
	return 0;
}

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static void tcp_grow_window(struct sock *sk, const struct sk_buff *skb)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	/* Check #1 */
	if (tp->rcv_ssthresh < tp->window_clamp &&
	    (int)tp->rcv_ssthresh < tcp_space(sk) &&
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	    !sk_under_memory_pressure(sk)) {
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		int incr;

		/* Check #2. Increase window, if skb with such overhead
		 * will fit to rcvbuf in future.
		 */
		if (tcp_win_from_space(skb->truesize) <= skb->len)
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			incr = 2 * tp->advmss;
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		else
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			incr = __tcp_grow_window(sk, skb);
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		if (incr) {
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			incr = max_t(int, incr, 2 * skb->len);
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			tp->rcv_ssthresh = min(tp->rcv_ssthresh + incr,
					       tp->window_clamp);
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			inet_csk(sk)->icsk_ack.quick |= 1;
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		}
	}
}

/* 3. Tuning rcvbuf, when connection enters established state. */

static void tcp_fixup_rcvbuf(struct sock *sk)
{
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	u32 mss = tcp_sk(sk)->advmss;
	u32 icwnd = TCP_DEFAULT_INIT_RCVWND;
	int rcvmem;
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	/* Limit to 10 segments if mss <= 1460,
	 * or 14600/mss segments, with a minimum of two segments.
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	 */
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	if (mss > 1460)
		icwnd = max_t(u32, (1460 * TCP_DEFAULT_INIT_RCVWND) / mss, 2);

	rcvmem = SKB_TRUESIZE(mss + MAX_TCP_HEADER);
	while (tcp_win_from_space(rcvmem) < mss)
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		rcvmem += 128;
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	rcvmem *= icwnd;

	if (sk->sk_rcvbuf < rcvmem)
		sk->sk_rcvbuf = min(rcvmem, sysctl_tcp_rmem[2]);
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}

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/* 4. Try to fixup all. It is made immediately after connection enters
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 *    established state.
 */
static void tcp_init_buffer_space(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	int maxwin;

	if (!(sk->sk_userlocks & SOCK_RCVBUF_LOCK))
		tcp_fixup_rcvbuf(sk);
	if (!(sk->sk_userlocks & SOCK_SNDBUF_LOCK))
		tcp_fixup_sndbuf(sk);

	tp->rcvq_space.space = tp->rcv_wnd;

	maxwin = tcp_full_space(sk);

	if (tp->window_clamp >= maxwin) {
		tp->window_clamp = maxwin;

		if (sysctl_tcp_app_win && maxwin > 4 * tp->advmss)
			tp->window_clamp = max(maxwin -
					       (maxwin >> sysctl_tcp_app_win),
					       4 * tp->advmss);
	}

	/* Force reservation of one segment. */
	if (sysctl_tcp_app_win &&
	    tp->window_clamp > 2 * tp->advmss &&
	    tp->window_clamp + tp->advmss > maxwin)
		tp->window_clamp = max(2 * tp->advmss, maxwin - tp->advmss);

	tp->rcv_ssthresh = min(tp->rcv_ssthresh, tp->window_clamp);
	tp->snd_cwnd_stamp = tcp_time_stamp;
}

/* 5. Recalculate window clamp after socket hit its memory bounds. */
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static void tcp_clamp_window(struct sock *sk)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	struct inet_connection_sock *icsk = inet_csk(sk);
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	icsk->icsk_ack.quick = 0;
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	if (sk->sk_rcvbuf < sysctl_tcp_rmem[2] &&
	    !(sk->sk_userlocks & SOCK_RCVBUF_LOCK) &&
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	    !sk_under_memory_pressure(sk) &&
	    sk_memory_allocated(sk) < sk_prot_mem_limits(sk, 0)) {
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		sk->sk_rcvbuf = min(atomic_read(&sk->sk_rmem_alloc),
				    sysctl_tcp_rmem[2]);
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	}
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	if (atomic_read(&sk->sk_rmem_alloc) > sk->sk_rcvbuf)
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		tp->rcv_ssthresh = min(tp->window_clamp, 2U * tp->advmss);
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}

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/* Initialize RCV_MSS value.
 * RCV_MSS is an our guess about MSS used by the peer.
 * We haven't any direct information about the MSS.
 * It's better to underestimate the RCV_MSS rather than overestimate.
 * Overestimations make us ACKing less frequently than needed.
 * Underestimations are more easy to detect and fix by tcp_measure_rcv_mss().
 */
void tcp_initialize_rcv_mss(struct sock *sk)
{
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	const struct tcp_sock *tp = tcp_sk(sk);
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	unsigned int hint = min_t(unsigned int, tp->advmss, tp->mss_cache);

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	hint = min(hint, tp->rcv_wnd / 2);
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	hint = min(hint, TCP_MSS_DEFAULT);
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	hint = max(hint, TCP_MIN_MSS);

	inet_csk(sk)->icsk_ack.rcv_mss = hint;
}
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EXPORT_SYMBOL(tcp_initialize_rcv_mss);
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/* Receiver "autotuning" code.
 *
 * The algorithm for RTT estimation w/o timestamps is based on
 * Dynamic Right-Sizing (DRS) by Wu Feng and Mike Fisk of LANL.
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 * <http://public.lanl.gov/radiant/pubs.html#DRS>
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 *
 * More detail on this code can be found at
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 * <http://staff.psc.edu/jheffner/>,
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 * though this reference is out of date.  A new paper
 * is pending.
 */
static void tcp_rcv_rtt_update(struct tcp_sock *tp, u32 sample, int win_dep)
{
	u32 new_sample = tp->rcv_rtt_est.rtt;
	long m = sample;

	if (m == 0)
		m = 1;

	if (new_sample != 0) {
		/* If we sample in larger samples in the non-timestamp
		 * case, we could grossly overestimate the RTT especially
		 * with chatty applications or bulk transfer apps which
		 * are stalled on filesystem I/O.
		 *
		 * Also, since we are only going for a minimum in the
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		 * non-timestamp case, we do not smooth things out
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		 * else with timestamps disabled convergence takes too
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		 * long.
		 */
		if (!win_dep) {
			m -= (new_sample >> 3);
			new_sample += m;
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		} else {
			m <<= 3;
			if (m < new_sample)
				new_sample = m;
		}
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	} else {
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		/* No previous measure. */
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		new_sample = m << 3;
	}

	if (tp->rcv_rtt_est.rtt != new_sample)
		tp->rcv_rtt_est.rtt = new_sample;
}

static inline void tcp_rcv_rtt_measure(struct tcp_sock *tp)
{
	if (tp->rcv_rtt_est.time == 0)
		goto new_measure;
	if (before(tp->rcv_nxt, tp->rcv_rtt_est.seq))
		return;
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	tcp_rcv_rtt_update(tp, tcp_time_stamp - tp->rcv_rtt_est.time, 1);
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new_measure:
	tp->rcv_rtt_est.seq = tp->rcv_nxt + tp->rcv_wnd;
	tp->rcv_rtt_est.time = tcp_time_stamp;
}

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static inline void tcp_rcv_rtt_measure_ts(struct sock *sk,
					  const struct sk_buff *skb)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	if (tp->rx_opt.rcv_tsecr &&
	    (TCP_SKB_CB(skb)->end_seq -
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	     TCP_SKB_CB(skb)->seq >= inet_csk(sk)->icsk_ack.rcv_mss))
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		tcp_rcv_rtt_update(tp, tcp_time_stamp - tp->rx_opt.rcv_tsecr, 0);
}

/*
 * This function should be called every time data is copied to user space.
 * It calculates the appropriate TCP receive buffer space.
 */
void tcp_rcv_space_adjust(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	int time;
	int space;
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	if (tp->rcvq_space.time == 0)
		goto new_measure;
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	time = tcp_time_stamp - tp->rcvq_space.time;
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	if (time < (tp->rcv_rtt_est.rtt >> 3) || tp->rcv_rtt_est.rtt == 0)
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		return;
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	space = 2 * (tp->copied_seq - tp->rcvq_space.seq);

	space = max(tp->rcvq_space.space, space);

	if (tp->rcvq_space.space != space) {
		int rcvmem;

		tp->rcvq_space.space = space;

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		if (sysctl_tcp_moderate_rcvbuf &&
		    !(sk->sk_userlocks & SOCK_RCVBUF_LOCK)) {
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			int new_clamp = space;

			/* Receive space grows, normalize in order to
			 * take into account packet headers and sk_buff
			 * structure overhead.
			 */
			space /= tp->advmss;
			if (!space)
				space = 1;
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			rcvmem = SKB_TRUESIZE(tp->advmss + MAX_TCP_HEADER);
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			while (tcp_win_from_space(rcvmem) < tp->advmss)
				rcvmem += 128;
			space *= rcvmem;
			space = min(space, sysctl_tcp_rmem[2]);
			if (space > sk->sk_rcvbuf) {
				sk->sk_rcvbuf = space;

				/* Make the window clamp follow along.  */
				tp->window_clamp = new_clamp;
			}
		}
	}
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new_measure:
	tp->rcvq_space.seq = tp->copied_seq;
	tp->rcvq_space.time = tcp_time_stamp;
}

/* There is something which you must keep in mind when you analyze the
 * behavior of the tp->ato delayed ack timeout interval.  When a
 * connection starts up, we want to ack as quickly as possible.  The
 * problem is that "good" TCP's do slow start at the beginning of data
 * transmission.  The means that until we send the first few ACK's the
 * sender will sit on his end and only queue most of his data, because
 * he can only send snd_cwnd unacked packets at any given time.  For
 * each ACK we send, he increments snd_cwnd and transmits more of his
 * queue.  -DaveM
 */
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static void tcp_event_data_recv(struct sock *sk, struct sk_buff *skb)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	struct inet_connection_sock *icsk = inet_csk(sk);
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	u32 now;

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	inet_csk_schedule_ack(sk);
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	tcp_measure_rcv_mss(sk, skb);
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	tcp_rcv_rtt_measure(tp);
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	now = tcp_time_stamp;

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	if (!icsk->icsk_ack.ato) {
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		/* The _first_ data packet received, initialize
		 * delayed ACK engine.
		 */
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		tcp_incr_quickack(sk);
		icsk->icsk_ack.ato = TCP_ATO_MIN;
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	} else {
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		int m = now - icsk->icsk_ack.lrcvtime;
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		if (m <= TCP_ATO_MIN / 2) {
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			/* The fastest case is the first. */
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			icsk->icsk_ack.ato = (icsk->icsk_ack.ato >> 1) + TCP_ATO_MIN / 2;
		} else if (m < icsk->icsk_ack.ato) {
			icsk->icsk_ack.ato = (icsk->icsk_ack.ato >> 1) + m;
			if (icsk->icsk_ack.ato > icsk->icsk_rto)
				icsk->icsk_ack.ato = icsk->icsk_rto;
		} else if (m > icsk->icsk_rto) {
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			/* Too long gap. Apparently sender failed to
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			 * restart window, so that we send ACKs quickly.
			 */
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			tcp_incr_quickack(sk);
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			sk_mem_reclaim(sk);
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		}
	}
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	icsk->icsk_ack.lrcvtime = now;
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	TCP_ECN_check_ce(tp, skb);

	if (skb->len >= 128)
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		tcp_grow_window(sk, skb);
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}

/* Called to compute a smoothed rtt estimate. The data fed to this
 * routine either comes from timestamps, or from segments that were
 * known _not_ to have been retransmitted [see Karn/Partridge
 * Proceedings SIGCOMM 87]. The algorithm is from the SIGCOMM 88
 * piece by Van Jacobson.
 * NOTE: the next three routines used to be one big routine.
 * To save cycles in the RFC 1323 implementation it was better to break
 * it up into three procedures. -- erics
 */
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static void tcp_rtt_estimator(struct sock *sk, const __u32 mrtt)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	long m = mrtt; /* RTT */

	/*	The following amusing code comes from Jacobson's
	 *	article in SIGCOMM '88.  Note that rtt and mdev
	 *	are scaled versions of rtt and mean deviation.
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	 *	This is designed to be as fast as possible
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	 *	m stands for "measurement".
	 *
	 *	On a 1990 paper the rto value is changed to:
	 *	RTO = rtt + 4 * mdev
	 *
	 * Funny. This algorithm seems to be very broken.
	 * These formulae increase RTO, when it should be decreased, increase
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	 * too slowly, when it should be increased quickly, decrease too quickly
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	 * etc. I guess in BSD RTO takes ONE value, so that it is absolutely
	 * does not matter how to _calculate_ it. Seems, it was trap
	 * that VJ failed to avoid. 8)
	 */
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	if (m == 0)
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		m = 1;
	if (tp->srtt != 0) {
		m -= (tp->srtt >> 3);	/* m is now error in rtt est */
		tp->srtt += m;		/* rtt = 7/8 rtt + 1/8 new */
		if (m < 0) {
			m = -m;		/* m is now abs(error) */
			m -= (tp->mdev >> 2);   /* similar update on mdev */
			/* This is similar to one of Eifel findings.
			 * Eifel blocks mdev updates when rtt decreases.
			 * This solution is a bit different: we use finer gain
			 * for mdev in this case (alpha*beta).
			 * Like Eifel it also prevents growth of rto,
			 * but also it limits too fast rto decreases,
			 * happening in pure Eifel.
			 */
			if (m > 0)
				m >>= 3;
		} else {
			m -= (tp->mdev >> 2);   /* similar update on mdev */
		}
		tp->mdev += m;	    	/* mdev = 3/4 mdev + 1/4 new */
		if (tp->mdev > tp->mdev_max) {
			tp->mdev_max = tp->mdev;
			if (tp->mdev_max > tp->rttvar)
				tp->rttvar = tp->mdev_max;
		}
		if (after(tp->snd_una, tp->rtt_seq)) {
			if (tp->mdev_max < tp->rttvar)
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				tp->rttvar -= (tp->rttvar - tp->mdev_max) >> 2;
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			tp->rtt_seq = tp->snd_nxt;
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			tp->mdev_max = tcp_rto_min(sk);
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		}
	} else {
		/* no previous measure. */
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		tp->srtt = m << 3;	/* take the measured time to be rtt */
		tp->mdev = m << 1;	/* make sure rto = 3*rtt */
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		tp->mdev_max = tp->rttvar = max(tp->mdev, tcp_rto_min(sk));
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		tp->rtt_seq = tp->snd_nxt;
	}
}

/* Calculate rto without backoff.  This is the second half of Van Jacobson's
 * routine referred to above.
 */
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static inline void tcp_set_rto(struct sock *sk)
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{
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	const struct tcp_sock *tp = tcp_sk(sk);
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	/* Old crap is replaced with new one. 8)
	 *
	 * More seriously:
	 * 1. If rtt variance happened to be less 50msec, it is hallucination.
	 *    It cannot be less due to utterly erratic ACK generation made
	 *    at least by solaris and freebsd. "Erratic ACKs" has _nothing_
	 *    to do with delayed acks, because at cwnd>2 true delack timeout
	 *    is invisible. Actually, Linux-2.4 also generates erratic
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	 *    ACKs in some circumstances.
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	 */
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	inet_csk(sk)->icsk_rto = __tcp_set_rto(tp);
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	/* 2. Fixups made earlier cannot be right.
	 *    If we do not estimate RTO correctly without them,
	 *    all the algo is pure shit and should be replaced
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	 *    with correct one. It is exactly, which we pretend to do.
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	 */

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	/* NOTE: clamping at TCP_RTO_MIN is not required, current algo
	 * guarantees that rto is higher.
	 */
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	tcp_bound_rto(sk);
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}

/* Save metrics learned by this TCP session.
   This function is called only, when TCP finishes successfully
   i.e. when it enters TIME-WAIT or goes from LAST-ACK to CLOSE.
 */
void tcp_update_metrics(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct dst_entry *dst = __sk_dst_get(sk);

	if (sysctl_tcp_nometrics_save)
		return;

	dst_confirm(dst);

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	if (dst && (dst->flags & DST_HOST)) {
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		const struct inet_connection_sock *icsk = inet_csk(sk);
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		int m;
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		unsigned long rtt;
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		if (icsk->icsk_backoff || !tp->srtt) {
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			/* This session failed to estimate rtt. Why?
			 * Probably, no packets returned in time.
			 * Reset our results.
			 */
			if (!(dst_metric_locked(dst, RTAX_RTT)))
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				dst_metric_set(dst, RTAX_RTT, 0);
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			return;
		}

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		rtt = dst_metric_rtt(dst, RTAX_RTT);
		m = rtt - tp->srtt;
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		/* If newly calculated rtt larger than stored one,
		 * store new one. Otherwise, use EWMA. Remember,
		 * rtt overestimation is always better than underestimation.
		 */
		if (!(dst_metric_locked(dst, RTAX_RTT))) {
			if (m <= 0)
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				set_dst_metric_rtt(dst, RTAX_RTT, tp->srtt);
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			else
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				set_dst_metric_rtt(dst, RTAX_RTT, rtt - (m >> 3));
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		}

		if (!(dst_metric_locked(dst, RTAX_RTTVAR))) {
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			unsigned long var;
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			if (m < 0)
				m = -m;

			/* Scale deviation to rttvar fixed point */
			m >>= 1;
			if (m < tp->mdev)
				m = tp->mdev;

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			var = dst_metric_rtt(dst, RTAX_RTTVAR);
			if (m >= var)
				var = m;
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			else
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				var -= (var - m) >> 2;

			set_dst_metric_rtt(dst, RTAX_RTTVAR, var);
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		}

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		if (tcp_in_initial_slowstart(tp)) {
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			/* Slow start still did not finish. */
			if (dst_metric(dst, RTAX_SSTHRESH) &&
			    !dst_metric_locked(dst, RTAX_SSTHRESH) &&
			    (tp->snd_cwnd >> 1) > dst_metric(dst, RTAX_SSTHRESH))
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				dst_metric_set(dst, RTAX_SSTHRESH, tp->snd_cwnd >> 1);
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			if (!dst_metric_locked(dst, RTAX_CWND) &&
			    tp->snd_cwnd > dst_metric(dst, RTAX_CWND))
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				dst_metric_set(dst, RTAX_CWND, tp->snd_cwnd);
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		} else if (tp->snd_cwnd > tp->snd_ssthresh &&
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			   icsk->icsk_ca_state == TCP_CA_Open) {
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			/* Cong. avoidance phase, cwnd is reliable. */
			if (!dst_metric_locked(dst, RTAX_SSTHRESH))
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				dst_metric_set(dst, RTAX_SSTHRESH,
					       max(tp->snd_cwnd >> 1, tp->snd_ssthresh));
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			if (!dst_metric_locked(dst, RTAX_CWND))
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				dst_metric_set(dst, RTAX_CWND,
					       (dst_metric(dst, RTAX_CWND) +
						tp->snd_cwnd) >> 1);
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		} else {
			/* Else slow start did not finish, cwnd is non-sense,
			   ssthresh may be also invalid.
			 */
			if (!dst_metric_locked(dst, RTAX_CWND))
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				dst_metric_set(dst, RTAX_CWND,
					       (dst_metric(dst, RTAX_CWND) +
						tp->snd_ssthresh) >> 1);
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			if (dst_metric(dst, RTAX_SSTHRESH) &&
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			    !dst_metric_locked(dst, RTAX_SSTHRESH) &&
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			    tp->snd_ssthresh > dst_metric(dst, RTAX_SSTHRESH))
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				dst_metric_set(dst, RTAX_SSTHRESH, tp->snd_ssthresh);
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		}

		if (!dst_metric_locked(dst, RTAX_REORDERING)) {
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			if (dst_metric(dst, RTAX_REORDERING) < tp->reordering &&
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			    tp->reordering != sysctl_tcp_reordering)
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				dst_metric_set(dst, RTAX_REORDERING, tp->reordering);
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		}
	}
}

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__u32 tcp_init_cwnd(const struct tcp_sock *tp, const struct dst_entry *dst)
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{
	__u32 cwnd = (dst ? dst_metric(dst, RTAX_INITCWND) : 0);

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	if (!cwnd)
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		cwnd = TCP_INIT_CWND;
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	return min_t(__u32, cwnd, tp->snd_cwnd_clamp);
}

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/* Set slow start threshold and cwnd not falling to slow start */
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void tcp_enter_cwr(struct sock *sk, const int set_ssthresh)
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{
	struct tcp_sock *tp = tcp_sk(sk);
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	const struct inet_connection_sock *icsk = inet_csk(sk);
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	tp->prior_ssthresh = 0;
	tp->bytes_acked = 0;
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	if (icsk->icsk_ca_state < TCP_CA_CWR) {
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		tp->undo_marker = 0;
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		if (set_ssthresh)
			tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
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		tp->snd_cwnd = min(tp->snd_cwnd,
				   tcp_packets_in_flight(tp) + 1U);
		tp->snd_cwnd_cnt = 0;
		tp->high_seq = tp->snd_nxt;
		tp->snd_cwnd_stamp = tcp_time_stamp;
		TCP_ECN_queue_cwr(tp);

		tcp_set_ca_state(sk, TCP_CA_CWR);
	}
}

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/*
 * Packet counting of FACK is based on in-order assumptions, therefore TCP
 * disables it when reordering is detected
 */
static void tcp_disable_fack(struct tcp_sock *tp)
{
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	/* RFC3517 uses different metric in lost marker => reset on change */
	if (tcp_is_fack(tp))
		tp->lost_skb_hint = NULL;
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	tp->rx_opt.sack_ok &= ~TCP_FACK_ENABLED;
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}

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/* Take a notice that peer is sending D-SACKs */
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static void tcp_dsack_seen(struct tcp_sock *tp)
{
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	tp->rx_opt.sack_ok |= TCP_DSACK_SEEN;
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}

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/* Initialize metrics on socket. */

static void tcp_init_metrics(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct dst_entry *dst = __sk_dst_get(sk);

	if (dst == NULL)
		goto reset;

	dst_confirm(dst);

	if (dst_metric_locked(dst, RTAX_CWND))
		tp->snd_cwnd_clamp = dst_metric(dst, RTAX_CWND);
	if (dst_metric(dst, RTAX_SSTHRESH)) {
		tp->snd_ssthresh = dst_metric(dst, RTAX_SSTHRESH);
		if (tp->snd_ssthresh > tp->snd_cwnd_clamp)
			tp->snd_ssthresh = tp->snd_cwnd_clamp;
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	} else {
		/* ssthresh may have been reduced unnecessarily during.
		 * 3WHS. Restore it back to its initial default.
		 */
		tp->snd_ssthresh = TCP_INFINITE_SSTHRESH;
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	}
	if (dst_metric(dst, RTAX_REORDERING) &&
	    tp->reordering != dst_metric(dst, RTAX_REORDERING)) {
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		tcp_disable_fack(tp);
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		tp->reordering = dst_metric(dst, RTAX_REORDERING);
	}

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	if (dst_metric(dst, RTAX_RTT) == 0 || tp->srtt == 0)
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		goto reset;

	/* Initial rtt is determined from SYN,SYN-ACK.
	 * The segment is small and rtt may appear much
	 * less than real one. Use per-dst memory
	 * to make it more realistic.
	 *
	 * A bit of theory. RTT is time passed after "normal" sized packet
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	 * is sent until it is ACKed. In normal circumstances sending small
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	 * packets force peer to delay ACKs and calculation is correct too.
	 * The algorithm is adaptive and, provided we follow specs, it
	 * NEVER underestimate RTT. BUT! If peer tries to make some clever
	 * tricks sort of "quick acks" for time long enough to decrease RTT
	 * to low value, and then abruptly stops to do it and starts to delay
	 * ACKs, wait for troubles.
	 */
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	if (dst_metric_rtt(dst, RTAX_RTT) > tp->srtt) {
		tp->srtt = dst_metric_rtt(dst, RTAX_RTT);
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		tp->rtt_seq = tp->snd_nxt;
	}
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	if (dst_metric_rtt(dst, RTAX_RTTVAR) > tp->mdev) {
		tp->mdev = dst_metric_rtt(dst, RTAX_RTTVAR);
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		tp->mdev_max = tp->rttvar = max(tp->mdev, tcp_rto_min(sk));
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	}
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	tcp_set_rto(sk);
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reset:
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	if (tp->srtt == 0) {
		/* RFC2988bis: We've failed to get a valid RTT sample from
		 * 3WHS. This is most likely due to retransmission,
		 * including spurious one. Reset the RTO back to 3secs
		 * from the more aggressive 1sec to avoid more spurious
		 * retransmission.
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		 */
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		tp->mdev = tp->mdev_max = tp->rttvar = TCP_TIMEOUT_FALLBACK;
		inet_csk(sk)->icsk_rto = TCP_TIMEOUT_FALLBACK;
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	}
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	/* Cut cwnd down to 1 per RFC5681 if SYN or SYN-ACK has been
	 * retransmitted. In light of RFC2988bis' more aggressive 1sec
	 * initRTO, we only reset cwnd when more than 1 SYN/SYN-ACK
	 * retransmission has occurred.
	 */
	if (tp->total_retrans > 1)
		tp->snd_cwnd = 1;
	else
		tp->snd_cwnd = tcp_init_cwnd(tp, dst);
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	tp->snd_cwnd_stamp = tcp_time_stamp;
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}

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static void tcp_update_reordering(struct sock *sk, const int metric,
				  const int ts)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	if (metric > tp->reordering) {
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		int mib_idx;

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		tp->reordering = min(TCP_MAX_REORDERING, metric);

		/* This exciting event is worth to be remembered. 8) */
		if (ts)
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			mib_idx = LINUX_MIB_TCPTSREORDER;
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		else if (tcp_is_reno(tp))
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			mib_idx = LINUX_MIB_TCPRENOREORDER;
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		else if (tcp_is_fack(tp))
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			mib_idx = LINUX_MIB_TCPFACKREORDER;
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		else
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			mib_idx = LINUX_MIB_TCPSACKREORDER;

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		NET_INC_STATS_BH(sock_net(sk), mib_idx);
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#if FASTRETRANS_DEBUG > 1
		printk(KERN_DEBUG "Disorder%d %d %u f%u s%u rr%d\n",
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		       tp->rx_opt.sack_ok, inet_csk(sk)->icsk_ca_state,
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		       tp->reordering,
		       tp->fackets_out,
		       tp->sacked_out,
		       tp->undo_marker ? tp->undo_retrans : 0);
#endif
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		tcp_disable_fack(tp);
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	}
}

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/* This must be called before lost_out is incremented */
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static void tcp_verify_retransmit_hint(struct tcp_sock *tp, struct sk_buff *skb)
{
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	if ((tp->retransmit_skb_hint == NULL) ||
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	    before(TCP_SKB_CB(skb)->seq,
		   TCP_SKB_CB(tp->retransmit_skb_hint)->seq))
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		tp->retransmit_skb_hint = skb;

	if (!tp->lost_out ||
	    after(TCP_SKB_CB(skb)->end_seq, tp->retransmit_high))
		tp->retransmit_high = TCP_SKB_CB(skb)->end_seq;
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}

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static void tcp_skb_mark_lost(struct tcp_sock *tp, struct sk_buff *skb)
{
	if (!(TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_ACKED))) {
		tcp_verify_retransmit_hint(tp, skb);

		tp->lost_out += tcp_skb_pcount(skb);
		TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
	}
}

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static void tcp_skb_mark_lost_uncond_verify(struct tcp_sock *tp,
					    struct sk_buff *skb)
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{
	tcp_verify_retransmit_hint(tp, skb);

	if (!(TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_ACKED))) {
		tp->lost_out += tcp_skb_pcount(skb);
		TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
	}
}

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/* This procedure tags the retransmission queue when SACKs arrive.
 *
 * We have three tag bits: SACKED(S), RETRANS(R) and LOST(L).
 * Packets in queue with these bits set are counted in variables
 * sacked_out, retrans_out and lost_out, correspondingly.
 *
 * Valid combinations are:
 * Tag  InFlight	Description
 * 0	1		- orig segment is in flight.
 * S	0		- nothing flies, orig reached receiver.
 * L	0		- nothing flies, orig lost by net.
 * R	2		- both orig and retransmit are in flight.
 * L|R	1		- orig is lost, retransmit is in flight.
 * S|R  1		- orig reached receiver, retrans is still in flight.
 * (L|S|R is logically valid, it could occur when L|R is sacked,
 *  but it is equivalent to plain S and code short-curcuits it to S.
 *  L|S is logically invalid, it would mean -1 packet in flight 8))
 *
 * These 6 states form finite state machine, controlled by the following events:
 * 1. New ACK (+SACK) arrives. (tcp_sacktag_write_queue())
 * 2. Retransmission. (tcp_retransmit_skb(), tcp_xmit_retransmit_queue())
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 * 3. Loss detection event of two flavors:
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 *	A. Scoreboard estimator decided the packet is lost.
 *	   A'. Reno "three dupacks" marks head of queue lost.
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 *	   A''. Its FACK modification, head until snd.fack is lost.
 *	B. SACK arrives sacking SND.NXT at the moment, when the
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 *	   segment was retransmitted.
 * 4. D-SACK added new rule: D-SACK changes any tag to S.
 *
 * It is pleasant to note, that state diagram turns out to be commutative,
 * so that we are allowed not to be bothered by order of our actions,
 * when multiple events arrive simultaneously. (see the function below).
 *
 * Reordering detection.
 * --------------------
 * Reordering metric is maximal distance, which a packet can be displaced
 * in packet stream. With SACKs we can estimate it:
 *
 * 1. SACK fills old hole and the corresponding segment was not
 *    ever retransmitted -> reordering. Alas, we cannot use it
 *    when segment was retransmitted.
 * 2. The last flaw is solved with D-SACK. D-SACK arrives
 *    for retransmitted and already SACKed segment -> reordering..
 * Both of these heuristics are not used in Loss state, when we cannot
 * account for retransmits accurately.
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 *
 * SACK block validation.
 * ----------------------
 *
 * SACK block range validation checks that the received SACK block fits to
 * the expected sequence limits, i.e., it is between SND.UNA and SND.NXT.
 * Note that SND.UNA is not included to the range though being valid because
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 * it means that the receiver is rather inconsistent with itself reporting
 * SACK reneging when it should advance SND.UNA. Such SACK block this is
 * perfectly valid, however, in light of RFC2018 which explicitly states
 * that "SACK block MUST reflect the newest segment.  Even if the newest
 * segment is going to be discarded ...", not that it looks very clever
 * in case of head skb. Due to potentional receiver driven attacks, we
 * choose to avoid immediate execution of a walk in write queue due to
 * reneging and defer head skb's loss recovery to standard loss recovery
 * procedure that will eventually trigger (nothing forbids us doing this).
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 *
 * Implements also blockage to start_seq wrap-around. Problem lies in the
 * fact that though start_seq (s) is before end_seq (i.e., not reversed),
 * there's no guarantee that it will be before snd_nxt (n). The problem
 * happens when start_seq resides between end_seq wrap (e_w) and snd_nxt
 * wrap (s_w):
 *
 *         <- outs wnd ->                          <- wrapzone ->
 *         u     e      n                         u_w   e_w  s n_w
 *         |     |      |                          |     |   |  |
 * |<------------+------+----- TCP seqno space --------------+---------->|
 * ...-- <2^31 ->|                                           |<--------...
 * ...---- >2^31 ------>|                                    |<--------...
 *
 * Current code wouldn't be vulnerable but it's better still to discard such
 * crazy SACK blocks. Doing this check for start_seq alone closes somewhat
 * similar case (end_seq after snd_nxt wrap) as earlier reversed check in
 * snd_nxt wrap -> snd_una region will then become "well defined", i.e.,
 * equal to the ideal case (infinite seqno space without wrap caused issues).
 *
 * With D-SACK the lower bound is extended to cover sequence space below
 * SND.UNA down to undo_marker, which is the last point of interest. Yet
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 * again, D-SACK block must not to go across snd_una (for the same reason as
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 * for the normal SACK blocks, explained above). But there all simplicity
 * ends, TCP might receive valid D-SACKs below that. As long as they reside
 * fully below undo_marker they do not affect behavior in anyway and can
 * therefore be safely ignored. In rare cases (which are more or less
 * theoretical ones), the D-SACK will nicely cross that boundary due to skb
 * fragmentation and packet reordering past skb's retransmission. To consider
 * them correctly, the acceptable range must be extended even more though
 * the exact amount is rather hard to quantify. However, tp->max_window can
 * be used as an exaggerated estimate.
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 */
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static int tcp_is_sackblock_valid(struct tcp_sock *tp, int is_dsack,
				  u32 start_seq, u32 end_seq)
{
	/* Too far in future, or reversed (interpretation is ambiguous) */
	if (after(end_seq, tp->snd_nxt) || !before(start_seq, end_seq))
		return 0;

	/* Nasty start_seq wrap-around check (see comments above) */
	if (!before(start_seq, tp->snd_nxt))
		return 0;

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	/* In outstanding window? ...This is valid exit for D-SACKs too.
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	 * start_seq == snd_una is non-sensical (see comments above)
	 */
	if (after(start_seq, tp->snd_una))
		return 1;

	if (!is_dsack || !tp->undo_marker)
		return 0;

	/* ...Then it's D-SACK, and must reside below snd_una completely */
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	if (after(end_seq, tp->snd_una))
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		return 0;

	if (!before(start_seq, tp->undo_marker))
		return 1;

	/* Too old */
	if (!after(end_seq, tp->undo_marker))
		return 0;

	/* Undo_marker boundary crossing (overestimates a lot). Known already:
	 *   start_seq < undo_marker and end_seq >= undo_marker.
	 */
	return !before(start_seq, end_seq - tp->max_window);
}

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/* Check for lost retransmit. This superb idea is borrowed from "ratehalving".
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 * Event "B". Later note: FACK people cheated me again 8), we have to account
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 * for reordering! Ugly, but should help.
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 *
 * Search retransmitted skbs from write_queue that were sent when snd_nxt was
 * less than what is now known to be received by the other end (derived from
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 * highest SACK block). Also calculate the lowest snd_nxt among the remaining
 * retransmitted skbs to avoid some costly processing per ACKs.
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 */
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static void tcp_mark_lost_retrans(struct sock *sk)
1171
{
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	const struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;
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	int cnt = 0;
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	u32 new_low_seq = tp->snd_nxt;
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	u32 received_upto = tcp_highest_sack_seq(tp);
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	if (!tcp_is_fack(tp) || !tp->retrans_out ||
	    !after(received_upto, tp->lost_retrans_low) ||
	    icsk->icsk_ca_state != TCP_CA_Recovery)
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		return;
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	tcp_for_write_queue(skb, sk) {
		u32 ack_seq = TCP_SKB_CB(skb)->ack_seq;

		if (skb == tcp_send_head(sk))
			break;
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		if (cnt == tp->retrans_out)
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			break;
		if (!after(TCP_SKB_CB(skb)->end_seq, tp->snd_una))
			continue;

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		if (!(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_RETRANS))
			continue;

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		/* TODO: We would like to get rid of tcp_is_fack(tp) only
		 * constraint here (see above) but figuring out that at
		 * least tp->reordering SACK blocks reside between ack_seq
		 * and received_upto is not easy task to do cheaply with
		 * the available datastructures.
		 *
		 * Whether FACK should check here for tp->reordering segs
		 * in-between one could argue for either way (it would be
		 * rather simple to implement as we could count fack_count
		 * during the walk and do tp->fackets_out - fack_count).
		 */
		if (after(received_upto, ack_seq)) {
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			TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_RETRANS;
			tp->retrans_out -= tcp_skb_pcount(skb);

1212
			tcp_skb_mark_lost_uncond_verify(tp, skb);
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			NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPLOSTRETRANSMIT);
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		} else {
1215
			if (before(ack_seq, new_low_seq))
1216
				new_low_seq = ack_seq;
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			cnt += tcp_skb_pcount(skb);
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		}
	}
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	if (tp->retrans_out)
		tp->lost_retrans_low = new_low_seq;
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}
1224

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static int tcp_check_dsack(struct sock *sk, const struct sk_buff *ack_skb,
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			   struct tcp_sack_block_wire *sp, int num_sacks,
			   u32 prior_snd_una)
{
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	struct tcp_sock *tp = tcp_sk(sk);
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	u32 start_seq_0 = get_unaligned_be32(&sp[0].start_seq);
	u32 end_seq_0 = get_unaligned_be32(&sp[0].end_seq);
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	int dup_sack = 0;

	if (before(start_seq_0, TCP_SKB_CB(ack_skb)->ack_seq)) {
		dup_sack = 1;
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		tcp_dsack_seen(tp);
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPDSACKRECV);
1238
	} else if (num_sacks > 1) {
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		u32 end_seq_1 = get_unaligned_be32(&sp[1].end_seq);
		u32 start_seq_1 = get_unaligned_be32(&sp[1].start_seq);
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		if (!after(end_seq_0, end_seq_1) &&
		    !before(start_seq_0, start_seq_1)) {
			dup_sack = 1;
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			tcp_dsack_seen(tp);
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			NET_INC_STATS_BH(sock_net(sk),
					LINUX_MIB_TCPDSACKOFORECV);
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		}
	}

	/* D-SACK for already forgotten data... Do dumb counting. */
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	if (dup_sack && tp->undo_marker && tp->undo_retrans &&
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	    !after(end_seq_0, prior_snd_una) &&
	    after(end_seq_0, tp->undo_marker))
		tp->undo_retrans--;

	return dup_sack;
}

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struct tcp_sacktag_state {
	int reord;
	int fack_count;
	int flag;
};

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/* Check if skb is fully within the SACK block. In presence of GSO skbs,
 * the incoming SACK may not exactly match but we can find smaller MSS
 * aligned portion of it that matches. Therefore we might need to fragment
 * which may fail and creates some hassle (caller must handle error case
 * returns).
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 *
 * FIXME: this could be merged to shift decision code
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 */
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static int tcp_match_skb_to_sack(struct sock *sk, struct sk_buff *skb,
				 u32 start_seq, u32 end_seq)
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{
	int in_sack, err;
	unsigned int pkt_len;
1279
	unsigned int mss;
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	in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq) &&
		  !before(end_seq, TCP_SKB_CB(skb)->end_seq);

	if (tcp_skb_pcount(skb) > 1 && !in_sack &&
	    after(TCP_SKB_CB(skb)->end_seq, start_seq)) {
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		mss = tcp_skb_mss(skb);
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		in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq);

1289
		if (!in_sack) {
1290
			pkt_len = start_seq - TCP_SKB_CB(skb)->seq;
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			if (pkt_len < mss)
				pkt_len = mss;
		} else {
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			pkt_len = end_seq - TCP_SKB_CB(skb)->seq;
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			if (pkt_len < mss)
				return -EINVAL;
		}

		/* Round if necessary so that SACKs cover only full MSSes
		 * and/or the remaining small portion (if present)
		 */
		if (pkt_len > mss) {
			unsigned int new_len = (pkt_len / mss) * mss;
			if (!in_sack && new_len < pkt_len) {
				new_len += mss;
				if (new_len > skb->len)
					return 0;
			}
			pkt_len = new_len;
		}
		err = tcp_fragment(sk, skb, pkt_len, mss);
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		if (err < 0)
			return err;
	}

	return in_sack;
}

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/* Mark the given newly-SACKed range as such, adjusting counters and hints. */
static u8 tcp_sacktag_one(struct sock *sk,
			  struct tcp_sacktag_state *state, u8 sacked,
			  u32 start_seq, u32 end_seq,
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			  int dup_sack, int pcount)
1324
{
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	struct tcp_sock *tp = tcp_sk(sk);
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	int fack_count = state->fack_count;
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	/* Account D-SACK for retransmitted packet. */
	if (dup_sack && (sacked & TCPCB_RETRANS)) {
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		if (tp->undo_marker && tp->undo_retrans &&
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		    after(end_seq, tp->undo_marker))
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			tp->undo_retrans--;
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		if (sacked & TCPCB_SACKED_ACKED)
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			state->reord = min(fack_count, state->reord);
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	}

	/* Nothing to do; acked frame is about to be dropped (was ACKed). */
1338
	if (!after(end_seq, tp->snd_una))
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		return sacked;
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	if (!(sacked & TCPCB_SACKED_ACKED)) {
		if (sacked & TCPCB_SACKED_RETRANS) {
			/* If the segment is not tagged as lost,
			 * we do not clear RETRANS, believing
			 * that retransmission is still in flight.
			 */
			if (sacked & TCPCB_LOST) {
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				sacked &= ~(TCPCB_LOST|TCPCB_SACKED_RETRANS);
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				tp->lost_out -= pcount;
				tp->retrans_out -= pcount;
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			}
		} else {
			if (!(sacked & TCPCB_RETRANS)) {
				/* New sack for not retransmitted frame,
				 * which was in hole. It is reordering.
				 */
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				if (before(start_seq,
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					   tcp_highest_sack_seq(tp)))
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					state->reord = min(fack_count,
							   state->reord);
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				/* SACK enhanced F-RTO (RFC4138; Appendix B) */
1363
				if (!after(end_seq, tp->frto_highmark))
1364
					state->flag |= FLAG_ONLY_ORIG_SACKED;
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			}

			if (sacked & TCPCB_LOST) {
1368
				sacked &= ~TCPCB_LOST;
1369
				tp->lost_out -= pcount;
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			}
		}

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		sacked |= TCPCB_SACKED_ACKED;
		state->flag |= FLAG_DATA_SACKED;
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		tp->sacked_out += pcount;
1376

1377
		fack_count += pcount;
1378 1379 1380

		/* Lost marker hint past SACKed? Tweak RFC3517 cnt */
		if (!tcp_is_fack(tp) && (tp->lost_skb_hint != NULL) &&
1381
		    before(start_seq, TCP_SKB_CB(tp->lost_skb_hint)->seq))
1382
			tp->lost_cnt_hint += pcount;
1383 1384 1385 1386 1387 1388 1389 1390 1391

		if (fack_count > tp->fackets_out)
			tp->fackets_out = fack_count;
	}

	/* D-SACK. We can detect redundant retransmission in S|R and plain R
	 * frames and clear it. undo_retrans is decreased above, L|R frames
	 * are accounted above as well.
	 */
1392 1393
	if (dup_sack && (sacked & TCPCB_SACKED_RETRANS)) {
		sacked &= ~TCPCB_SACKED_RETRANS;
1394
		tp->retrans_out -= pcount;
1395 1396
	}

1397
	return sacked;
1398 1399
}

1400 1401 1402
/* Shift newly-SACKed bytes from this skb to the immediately previous
 * already-SACKed sk_buff. Mark the newly-SACKed bytes as such.
 */
1403
static int tcp_shifted_skb(struct sock *sk, struct sk_buff *skb,
1404
			   struct tcp_sacktag_state *state,
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1405 1406
			   unsigned int pcount, int shifted, int mss,
			   int dup_sack)
1407 1408
{
	struct tcp_sock *tp = tcp_sk(sk);
1409
	struct sk_buff *prev = tcp_write_queue_prev(sk, skb);
1410 1411
	u32 start_seq = TCP_SKB_CB(skb)->seq;	/* start of newly-SACKed */
	u32 end_seq = start_seq + shifted;	/* end of newly-SACKed */
1412 1413 1414

	BUG_ON(!pcount);

1415 1416 1417 1418 1419 1420 1421 1422 1423 1424
	/* Adjust counters and hints for the newly sacked sequence
	 * range but discard the return value since prev is already
	 * marked. We must tag the range first because the seq
	 * advancement below implicitly advances
	 * tcp_highest_sack_seq() when skb is highest_sack.
	 */
	tcp_sacktag_one(sk, state, TCP_SKB_CB(skb)->sacked,
			start_seq, end_seq, dup_sack, pcount);

	if (skb == tp->lost_skb_hint)
1425 1426
		tp->lost_cnt_hint += pcount;

1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454
	TCP_SKB_CB(prev)->end_seq += shifted;
	TCP_SKB_CB(skb)->seq += shifted;

	skb_shinfo(prev)->gso_segs += pcount;
	BUG_ON(skb_shinfo(skb)->gso_segs < pcount);
	skb_shinfo(skb)->gso_segs -= pcount;

	/* When we're adding to gso_segs == 1, gso_size will be zero,
	 * in theory this shouldn't be necessary but as long as DSACK
	 * code can come after this skb later on it's better to keep
	 * setting gso_size to something.
	 */
	if (!skb_shinfo(prev)->gso_size) {
		skb_shinfo(prev)->gso_size = mss;
		skb_shinfo(prev)->gso_type = sk->sk_gso_type;
	}

	/* CHECKME: To clear or not to clear? Mimics normal skb currently */
	if (skb_shinfo(skb)->gso_segs <= 1) {
		skb_shinfo(skb)->gso_size = 0;
		skb_shinfo(skb)->gso_type = 0;
	}

	/* Difference in this won't matter, both ACKed by the same cumul. ACK */
	TCP_SKB_CB(prev)->sacked |= (TCP_SKB_CB(skb)->sacked & TCPCB_EVER_RETRANS);

	if (skb->len > 0) {
		BUG_ON(!tcp_skb_pcount(skb));
1455
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_SACKSHIFTED);
1456 1457 1458 1459 1460
		return 0;
	}

	/* Whole SKB was eaten :-) */

1461 1462 1463 1464 1465 1466 1467 1468 1469
	if (skb == tp->retransmit_skb_hint)
		tp->retransmit_skb_hint = prev;
	if (skb == tp->scoreboard_skb_hint)
		tp->scoreboard_skb_hint = prev;
	if (skb == tp->lost_skb_hint) {
		tp->lost_skb_hint = prev;
		tp->lost_cnt_hint -= tcp_skb_pcount(prev);
	}

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1470
	TCP_SKB_CB(skb)->tcp_flags |= TCP_SKB_CB(prev)->tcp_flags;
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	if (skb == tcp_highest_sack(sk))
		tcp_advance_highest_sack(sk, skb);

	tcp_unlink_write_queue(skb, sk);
	sk_wmem_free_skb(sk, skb);

1477 1478
	NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_SACKMERGED);

1479 1480 1481 1482 1483 1484
	return 1;
}

/* I wish gso_size would have a bit more sane initialization than
 * something-or-zero which complicates things
 */
1485
static int tcp_skb_seglen(const struct sk_buff *skb)
1486
{
1487
	return tcp_skb_pcount(skb) == 1 ? skb->len : tcp_skb_mss(skb);
1488 1489 1490
}

/* Shifting pages past head area doesn't work */
1491
static int skb_can_shift(const struct sk_buff *skb)
1492 1493 1494 1495 1496 1497 1498 1499
{
	return !skb_headlen(skb) && skb_is_nonlinear(skb);
}

/* Try collapsing SACK blocks spanning across multiple skbs to a single
 * skb.
 */
static struct sk_buff *tcp_shift_skb_data(struct sock *sk, struct sk_buff *skb,
1500
					  struct tcp_sacktag_state *state,
1501
					  u32 start_seq, u32 end_seq,
1502
					  int dup_sack)
1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *prev;
	int mss;
	int pcount = 0;
	int len;
	int in_sack;

	if (!sk_can_gso(sk))
		goto fallback;

	/* Normally R but no L won't result in plain S */
	if (!dup_sack &&
1516
	    (TCP_SKB_CB(skb)->sacked & (TCPCB_LOST|TCPCB_SACKED_RETRANS)) == TCPCB_SACKED_RETRANS)
1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537
		goto fallback;
	if (!skb_can_shift(skb))
		goto fallback;
	/* This frame is about to be dropped (was ACKed). */
	if (!after(TCP_SKB_CB(skb)->end_seq, tp->snd_una))
		goto fallback;

	/* Can only happen with delayed DSACK + discard craziness */
	if (unlikely(skb == tcp_write_queue_head(sk)))
		goto fallback;
	prev = tcp_write_queue_prev(sk, skb);

	if ((TCP_SKB_CB(prev)->sacked & TCPCB_TAGBITS) != TCPCB_SACKED_ACKED)
		goto fallback;

	in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq) &&
		  !before(end_seq, TCP_SKB_CB(skb)->end_seq);

	if (in_sack) {
		len = skb->len;
		pcount = tcp_skb_pcount(skb);
1538
		mss = tcp_skb_seglen(skb);
1539 1540 1541 1542

		/* TODO: Fix DSACKs to not fragment already SACKed and we can
		 * drop this restriction as unnecessary
		 */
1543
		if (mss != tcp_skb_seglen(prev))
1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583
			goto fallback;
	} else {
		if (!after(TCP_SKB_CB(skb)->end_seq, start_seq))
			goto noop;
		/* CHECKME: This is non-MSS split case only?, this will
		 * cause skipped skbs due to advancing loop btw, original
		 * has that feature too
		 */
		if (tcp_skb_pcount(skb) <= 1)
			goto noop;

		in_sack = !after(start_seq, TCP_SKB_CB(skb)->seq);
		if (!in_sack) {
			/* TODO: head merge to next could be attempted here
			 * if (!after(TCP_SKB_CB(skb)->end_seq, end_seq)),
			 * though it might not be worth of the additional hassle
			 *
			 * ...we can probably just fallback to what was done
			 * previously. We could try merging non-SACKed ones
			 * as well but it probably isn't going to buy off
			 * because later SACKs might again split them, and
			 * it would make skb timestamp tracking considerably
			 * harder problem.
			 */
			goto fallback;
		}

		len = end_seq - TCP_SKB_CB(skb)->seq;
		BUG_ON(len < 0);
		BUG_ON(len > skb->len);

		/* MSS boundaries should be honoured or else pcount will
		 * severely break even though it makes things bit trickier.
		 * Optimize common case to avoid most of the divides
		 */
		mss = tcp_skb_mss(skb);

		/* TODO: Fix DSACKs to not fragment already SACKed and we can
		 * drop this restriction as unnecessary
		 */
1584
		if (mss != tcp_skb_seglen(prev))
1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596
			goto fallback;

		if (len == mss) {
			pcount = 1;
		} else if (len < mss) {
			goto noop;
		} else {
			pcount = len / mss;
			len = pcount * mss;
		}
	}

1597 1598 1599 1600
	/* tcp_sacktag_one() won't SACK-tag ranges below snd_una */
	if (!after(TCP_SKB_CB(skb)->seq + len, tp->snd_una))
		goto fallback;

1601 1602
	if (!skb_shift(prev, skb, len))
		goto fallback;
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1603
	if (!tcp_shifted_skb(sk, skb, state, pcount, len, mss, dup_sack))
1604 1605 1606 1607 1608 1609 1610 1611 1612
		goto out;

	/* Hole filled allows collapsing with the next as well, this is very
	 * useful when hole on every nth skb pattern happens
	 */
	if (prev == tcp_write_queue_tail(sk))
		goto out;
	skb = tcp_write_queue_next(sk, prev);

1613 1614 1615
	if (!skb_can_shift(skb) ||
	    (skb == tcp_send_head(sk)) ||
	    ((TCP_SKB_CB(skb)->sacked & TCPCB_TAGBITS) != TCPCB_SACKED_ACKED) ||
1616
	    (mss != tcp_skb_seglen(skb)))
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		goto out;

	len = skb->len;
	if (skb_shift(prev, skb, len)) {
		pcount += tcp_skb_pcount(skb);
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		tcp_shifted_skb(sk, skb, state, tcp_skb_pcount(skb), len, mss, 0);
1623 1624 1625
	}

out:
1626
	state->fack_count += pcount;
1627 1628 1629 1630 1631 1632
	return prev;

noop:
	return skb;

fallback:
1633
	NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_SACKSHIFTFALLBACK);
1634 1635 1636
	return NULL;
}

1637 1638
static struct sk_buff *tcp_sacktag_walk(struct sk_buff *skb, struct sock *sk,
					struct tcp_sack_block *next_dup,
1639
					struct tcp_sacktag_state *state,
1640
					u32 start_seq, u32 end_seq,
1641
					int dup_sack_in)
1642
{
1643 1644 1645
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *tmp;

1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665
	tcp_for_write_queue_from(skb, sk) {
		int in_sack = 0;
		int dup_sack = dup_sack_in;

		if (skb == tcp_send_head(sk))
			break;

		/* queue is in-order => we can short-circuit the walk early */
		if (!before(TCP_SKB_CB(skb)->seq, end_seq))
			break;

		if ((next_dup != NULL) &&
		    before(TCP_SKB_CB(skb)->seq, next_dup->end_seq)) {
			in_sack = tcp_match_skb_to_sack(sk, skb,
							next_dup->start_seq,
							next_dup->end_seq);
			if (in_sack > 0)
				dup_sack = 1;
		}

1666 1667 1668 1669 1670
		/* skb reference here is a bit tricky to get right, since
		 * shifting can eat and free both this skb and the next,
		 * so not even _safe variant of the loop is enough.
		 */
		if (in_sack <= 0) {
1671 1672
			tmp = tcp_shift_skb_data(sk, skb, state,
						 start_seq, end_seq, dup_sack);
1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686
			if (tmp != NULL) {
				if (tmp != skb) {
					skb = tmp;
					continue;
				}

				in_sack = 0;
			} else {
				in_sack = tcp_match_skb_to_sack(sk, skb,
								start_seq,
								end_seq);
			}
		}

1687 1688 1689
		if (unlikely(in_sack < 0))
			break;

1690
		if (in_sack) {
1691 1692 1693 1694 1695 1696 1697 1698
			TCP_SKB_CB(skb)->sacked =
				tcp_sacktag_one(sk,
						state,
						TCP_SKB_CB(skb)->sacked,
						TCP_SKB_CB(skb)->seq,
						TCP_SKB_CB(skb)->end_seq,
						dup_sack,
						tcp_skb_pcount(skb));
1699

1700 1701 1702 1703 1704
			if (!before(TCP_SKB_CB(skb)->seq,
				    tcp_highest_sack_seq(tp)))
				tcp_advance_highest_sack(sk, skb);
		}

1705
		state->fack_count += tcp_skb_pcount(skb);
1706 1707 1708 1709 1710 1711 1712 1713
	}
	return skb;
}

/* Avoid all extra work that is being done by sacktag while walking in
 * a normal way
 */
static struct sk_buff *tcp_sacktag_skip(struct sk_buff *skb, struct sock *sk,
1714 1715
					struct tcp_sacktag_state *state,
					u32 skip_to_seq)
1716 1717 1718 1719 1720
{
	tcp_for_write_queue_from(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;

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1721
		if (after(TCP_SKB_CB(skb)->end_seq, skip_to_seq))
1722
			break;
1723

1724
		state->fack_count += tcp_skb_pcount(skb);
1725 1726 1727 1728 1729 1730 1731
	}
	return skb;
}

static struct sk_buff *tcp_maybe_skipping_dsack(struct sk_buff *skb,
						struct sock *sk,
						struct tcp_sack_block *next_dup,
1732 1733
						struct tcp_sacktag_state *state,
						u32 skip_to_seq)
1734 1735 1736 1737 1738
{
	if (next_dup == NULL)
		return skb;

	if (before(next_dup->start_seq, skip_to_seq)) {
1739 1740 1741 1742
		skb = tcp_sacktag_skip(skb, sk, state, next_dup->start_seq);
		skb = tcp_sacktag_walk(skb, sk, NULL, state,
				       next_dup->start_seq, next_dup->end_seq,
				       1);
1743 1744 1745 1746 1747
	}

	return skb;
}

1748
static int tcp_sack_cache_ok(const struct tcp_sock *tp, const struct tcp_sack_block *cache)
1749 1750 1751 1752
{
	return cache < tp->recv_sack_cache + ARRAY_SIZE(tp->recv_sack_cache);
}

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1753
static int
1754
tcp_sacktag_write_queue(struct sock *sk, const struct sk_buff *ack_skb,
1755
			u32 prior_snd_una)
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1756
{
1757
	const struct inet_connection_sock *icsk = inet_csk(sk);
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1758
	struct tcp_sock *tp = tcp_sk(sk);
1759 1760
	const unsigned char *ptr = (skb_transport_header(ack_skb) +
				    TCP_SKB_CB(ack_skb)->sacked);
1761
	struct tcp_sack_block_wire *sp_wire = (struct tcp_sack_block_wire *)(ptr+2);
1762
	struct tcp_sack_block sp[TCP_NUM_SACKS];
1763
	struct tcp_sack_block *cache;
1764
	struct tcp_sacktag_state state;
1765
	struct sk_buff *skb;
1766
	int num_sacks = min(TCP_NUM_SACKS, (ptr[1] - TCPOLEN_SACK_BASE) >> 3);
1767
	int used_sacks;
1768
	int found_dup_sack = 0;
1769
	int i, j;
1770
	int first_sack_index;
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1771

1772 1773 1774
	state.flag = 0;
	state.reord = tp->packets_out;

1775
	if (!tp->sacked_out) {
1776 1777
		if (WARN_ON(tp->fackets_out))
			tp->fackets_out = 0;
1778
		tcp_highest_sack_reset(sk);
1779
	}
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1780

1781
	found_dup_sack = tcp_check_dsack(sk, ack_skb, sp_wire,
1782 1783
					 num_sacks, prior_snd_una);
	if (found_dup_sack)
1784
		state.flag |= FLAG_DSACKING_ACK;
1785 1786 1787 1788 1789 1790 1791 1792

	/* Eliminate too old ACKs, but take into
	 * account more or less fresh ones, they can
	 * contain valid SACK info.
	 */
	if (before(TCP_SKB_CB(ack_skb)->ack_seq, prior_snd_una - tp->max_window))
		return 0;

1793 1794 1795
	if (!tp->packets_out)
		goto out;

1796 1797 1798 1799 1800
	used_sacks = 0;
	first_sack_index = 0;
	for (i = 0; i < num_sacks; i++) {
		int dup_sack = !i && found_dup_sack;

1801 1802
		sp[used_sacks].start_seq = get_unaligned_be32(&sp_wire[i].start_seq);
		sp[used_sacks].end_seq = get_unaligned_be32(&sp_wire[i].end_seq);
1803 1804 1805 1806

		if (!tcp_is_sackblock_valid(tp, dup_sack,
					    sp[used_sacks].start_seq,
					    sp[used_sacks].end_seq)) {
1807 1808
			int mib_idx;

1809 1810
			if (dup_sack) {
				if (!tp->undo_marker)
1811
					mib_idx = LINUX_MIB_TCPDSACKIGNOREDNOUNDO;
1812
				else
1813
					mib_idx = LINUX_MIB_TCPDSACKIGNOREDOLD;
1814 1815 1816 1817 1818
			} else {
				/* Don't count olds caused by ACK reordering */
				if ((TCP_SKB_CB(ack_skb)->ack_seq != tp->snd_una) &&
				    !after(sp[used_sacks].end_seq, tp->snd_una))
					continue;
1819
				mib_idx = LINUX_MIB_TCPSACKDISCARD;
1820
			}
1821

1822
			NET_INC_STATS_BH(sock_net(sk), mib_idx);
1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834
			if (i == 0)
				first_sack_index = -1;
			continue;
		}

		/* Ignore very old stuff early */
		if (!after(sp[used_sacks].end_seq, prior_snd_una))
			continue;

		used_sacks++;
	}

1835 1836
	/* order SACK blocks to allow in order walk of the retrans queue */
	for (i = used_sacks - 1; i > 0; i--) {
1837 1838
		for (j = 0; j < i; j++) {
			if (after(sp[j].start_seq, sp[j + 1].start_seq)) {
1839
				swap(sp[j], sp[j + 1]);
1840

1841 1842
				/* Track where the first SACK block goes to */
				if (j == first_sack_index)
1843
					first_sack_index = j + 1;
1844 1845 1846 1847
			}
		}
	}

1848
	skb = tcp_write_queue_head(sk);
1849
	state.fack_count = 0;
1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860
	i = 0;

	if (!tp->sacked_out) {
		/* It's already past, so skip checking against it */
		cache = tp->recv_sack_cache + ARRAY_SIZE(tp->recv_sack_cache);
	} else {
		cache = tp->recv_sack_cache;
		/* Skip empty blocks in at head of the cache */
		while (tcp_sack_cache_ok(tp, cache) && !cache->start_seq &&
		       !cache->end_seq)
			cache++;
1861 1862
	}

1863
	while (i < used_sacks) {
1864 1865
		u32 start_seq = sp[i].start_seq;
		u32 end_seq = sp[i].end_seq;
1866
		int dup_sack = (found_dup_sack && (i == first_sack_index));
1867
		struct tcp_sack_block *next_dup = NULL;
1868

1869 1870
		if (found_dup_sack && ((i + 1) == first_sack_index))
			next_dup = &sp[i + 1];
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1871

1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882
		/* Skip too early cached blocks */
		while (tcp_sack_cache_ok(tp, cache) &&
		       !before(start_seq, cache->end_seq))
			cache++;

		/* Can skip some work by looking recv_sack_cache? */
		if (tcp_sack_cache_ok(tp, cache) && !dup_sack &&
		    after(end_seq, cache->start_seq)) {

			/* Head todo? */
			if (before(start_seq, cache->start_seq)) {
1883 1884
				skb = tcp_sacktag_skip(skb, sk, &state,
						       start_seq);
1885
				skb = tcp_sacktag_walk(skb, sk, next_dup,
1886
						       &state,
1887 1888
						       start_seq,
						       cache->start_seq,
1889
						       dup_sack);
1890
			}
1891

1892
			/* Rest of the block already fully processed? */
1893
			if (!after(end_seq, cache->end_seq))
1894
				goto advance_sp;
1895

1896
			skb = tcp_maybe_skipping_dsack(skb, sk, next_dup,
1897 1898
						       &state,
						       cache->end_seq);
1899

1900
			/* ...tail remains todo... */
1901
			if (tcp_highest_sack_seq(tp) == cache->end_seq) {
1902
				/* ...but better entrypoint exists! */
1903 1904 1905
				skb = tcp_highest_sack(sk);
				if (skb == NULL)
					break;
1906
				state.fack_count = tp->fackets_out;
1907 1908
				cache++;
				goto walk;
1909 1910
			}

1911
			skb = tcp_sacktag_skip(skb, sk, &state, cache->end_seq);
1912 1913 1914 1915
			/* Check overlap against next cached too (past this one already) */
			cache++;
			continue;
		}
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1917 1918 1919 1920
		if (!before(start_seq, tcp_highest_sack_seq(tp))) {
			skb = tcp_highest_sack(sk);
			if (skb == NULL)
				break;
1921
			state.fack_count = tp->fackets_out;
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1922
		}
1923
		skb = tcp_sacktag_skip(skb, sk, &state, start_seq);
1924 1925

walk:
1926 1927
		skb = tcp_sacktag_walk(skb, sk, next_dup, &state,
				       start_seq, end_seq, dup_sack);
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advance_sp:
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		/* SACK enhanced FRTO (RFC4138, Appendix B): Clearing correct
		 * due to in-order walk
		 */
		if (after(end_seq, tp->frto_highmark))
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			state.flag &= ~FLAG_ONLY_ORIG_SACKED;
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		i++;
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	}

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	/* Clear the head of the cache sack blocks so we can skip it next time */
	for (i = 0; i < ARRAY_SIZE(tp->recv_sack_cache) - used_sacks; i++) {
		tp->recv_sack_cache[i].start_seq = 0;
		tp->recv_sack_cache[i].end_seq = 0;
	}
	for (j = 0; j < used_sacks; j++)
		tp->recv_sack_cache[i++] = sp[j];

1947
	tcp_mark_lost_retrans(sk);
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	tcp_verify_left_out(tp);

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	if ((state.reord < tp->fackets_out) &&
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	    ((icsk->icsk_ca_state != TCP_CA_Loss) || tp->undo_marker) &&
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	    (!tp->frto_highmark || after(tp->snd_una, tp->frto_highmark)))
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		tcp_update_reordering(sk, tp->fackets_out - state.reord, 0);
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out:

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#if FASTRETRANS_DEBUG > 0
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	WARN_ON((int)tp->sacked_out < 0);
	WARN_ON((int)tp->lost_out < 0);
	WARN_ON((int)tp->retrans_out < 0);
	WARN_ON((int)tcp_packets_in_flight(tp) < 0);
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#endif
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	return state.flag;
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}

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/* Limits sacked_out so that sum with lost_out isn't ever larger than
 * packets_out. Returns zero if sacked_out adjustement wasn't necessary.
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 */
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static int tcp_limit_reno_sacked(struct tcp_sock *tp)
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{
	u32 holes;

	holes = max(tp->lost_out, 1U);
	holes = min(holes, tp->packets_out);

	if ((tp->sacked_out + holes) > tp->packets_out) {
		tp->sacked_out = tp->packets_out - holes;
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		return 1;
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	}
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	return 0;
}

/* If we receive more dupacks than we expected counting segments
 * in assumption of absent reordering, interpret this as reordering.
 * The only another reason could be bug in receiver TCP.
 */
static void tcp_check_reno_reordering(struct sock *sk, const int addend)
{
	struct tcp_sock *tp = tcp_sk(sk);
	if (tcp_limit_reno_sacked(tp))
		tcp_update_reordering(sk, tp->packets_out + addend, 0);
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}

/* Emulate SACKs for SACKless connection: account for a new dupack. */

static void tcp_add_reno_sack(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	tp->sacked_out++;
	tcp_check_reno_reordering(sk, 0);
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	tcp_verify_left_out(tp);
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}

/* Account for ACK, ACKing some data in Reno Recovery phase. */

static void tcp_remove_reno_sacks(struct sock *sk, int acked)
{
	struct tcp_sock *tp = tcp_sk(sk);

	if (acked > 0) {
		/* One ACK acked hole. The rest eat duplicate ACKs. */
2013
		if (acked - 1 >= tp->sacked_out)
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			tp->sacked_out = 0;
		else
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			tp->sacked_out -= acked - 1;
2017 2018
	}
	tcp_check_reno_reordering(sk, acked);
2019
	tcp_verify_left_out(tp);
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}

static inline void tcp_reset_reno_sack(struct tcp_sock *tp)
{
	tp->sacked_out = 0;
}

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static int tcp_is_sackfrto(const struct tcp_sock *tp)
{
	return (sysctl_tcp_frto == 0x2) && !tcp_is_reno(tp);
}

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/* F-RTO can only be used if TCP has never retransmitted anything other than
 * head (SACK enhanced variant from Appendix B of RFC4138 is more robust here)
 */
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int tcp_use_frto(struct sock *sk)
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{
	const struct tcp_sock *tp = tcp_sk(sk);
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	const struct inet_connection_sock *icsk = inet_csk(sk);
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	struct sk_buff *skb;

2041
	if (!sysctl_tcp_frto)
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		return 0;
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	/* MTU probe and F-RTO won't really play nicely along currently */
	if (icsk->icsk_mtup.probe_size)
		return 0;

2048
	if (tcp_is_sackfrto(tp))
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		return 1;

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	/* Avoid expensive walking of rexmit queue if possible */
	if (tp->retrans_out > 1)
		return 0;

2055
	skb = tcp_write_queue_head(sk);
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	if (tcp_skb_is_last(sk, skb))
		return 1;
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	skb = tcp_write_queue_next(sk, skb);	/* Skips head */
	tcp_for_write_queue_from(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
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		if (TCP_SKB_CB(skb)->sacked & TCPCB_RETRANS)
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			return 0;
		/* Short-circuit when first non-SACKed skb has been checked */
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		if (!(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED))
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			break;
	}
	return 1;
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}

2071 2072
/* RTO occurred, but do not yet enter Loss state. Instead, defer RTO
 * recovery a bit and use heuristics in tcp_process_frto() to detect if
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 * the RTO was spurious. Only clear SACKED_RETRANS of the head here to
 * keep retrans_out counting accurate (with SACK F-RTO, other than head
 * may still have that bit set); TCPCB_LOST and remaining SACKED_RETRANS
 * bits are handled if the Loss state is really to be entered (in
 * tcp_enter_frto_loss).
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 *
 * Do like tcp_enter_loss() would; when RTO expires the second time it
 * does:
 *  "Reduce ssthresh if it has not yet been made inside this window."
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 */
void tcp_enter_frto(struct sock *sk)
{
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	const struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;

2089
	if ((!tp->frto_counter && icsk->icsk_ca_state <= TCP_CA_Disorder) ||
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	    tp->snd_una == tp->high_seq ||
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	    ((icsk->icsk_ca_state == TCP_CA_Loss || tp->frto_counter) &&
	     !icsk->icsk_retransmits)) {
2093
		tp->prior_ssthresh = tcp_current_ssthresh(sk);
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		/* Our state is too optimistic in ssthresh() call because cwnd
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		 * is not reduced until tcp_enter_frto_loss() when previous F-RTO
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		 * recovery has not yet completed. Pattern would be this: RTO,
		 * Cumulative ACK, RTO (2xRTO for the same segment does not end
		 * up here twice).
		 * RFC4138 should be more specific on what to do, even though
		 * RTO is quite unlikely to occur after the first Cumulative ACK
		 * due to back-off and complexity of triggering events ...
		 */
		if (tp->frto_counter) {
			u32 stored_cwnd;
			stored_cwnd = tp->snd_cwnd;
			tp->snd_cwnd = 2;
			tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
			tp->snd_cwnd = stored_cwnd;
		} else {
			tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
		}
		/* ... in theory, cong.control module could do "any tricks" in
		 * ssthresh(), which means that ca_state, lost bits and lost_out
		 * counter would have to be faked before the call occurs. We
		 * consider that too expensive, unlikely and hacky, so modules
		 * using these in ssthresh() must deal these incompatibility
		 * issues if they receives CA_EVENT_FRTO and frto_counter != 0
		 */
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		tcp_ca_event(sk, CA_EVENT_FRTO);
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	}

	tp->undo_marker = tp->snd_una;
	tp->undo_retrans = 0;

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	skb = tcp_write_queue_head(sk);
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	if (TCP_SKB_CB(skb)->sacked & TCPCB_RETRANS)
		tp->undo_marker = 0;
2128
	if (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_RETRANS) {
2129
		TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_RETRANS;
2130
		tp->retrans_out -= tcp_skb_pcount(skb);
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	}
2132
	tcp_verify_left_out(tp);
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	/* Too bad if TCP was application limited */
	tp->snd_cwnd = min(tp->snd_cwnd, tcp_packets_in_flight(tp) + 1);

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	/* Earlier loss recovery underway (see RFC4138; Appendix B).
	 * The last condition is necessary at least in tp->frto_counter case.
	 */
2140
	if (tcp_is_sackfrto(tp) && (tp->frto_counter ||
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	    ((1 << icsk->icsk_ca_state) & (TCPF_CA_Recovery|TCPF_CA_Loss))) &&
	    after(tp->high_seq, tp->snd_una)) {
		tp->frto_highmark = tp->high_seq;
	} else {
		tp->frto_highmark = tp->snd_nxt;
	}
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	tcp_set_ca_state(sk, TCP_CA_Disorder);
	tp->high_seq = tp->snd_nxt;
2149
	tp->frto_counter = 1;
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}

/* Enter Loss state after F-RTO was applied. Dupack arrived after RTO,
 * which indicates that we should follow the traditional RTO recovery,
 * i.e. mark everything lost and do go-back-N retransmission.
 */
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static void tcp_enter_frto_loss(struct sock *sk, int allowed_segments, int flag)
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{
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;

	tp->lost_out = 0;
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	tp->retrans_out = 0;
2163
	if (tcp_is_reno(tp))
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		tcp_reset_reno_sack(tp);
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	tcp_for_write_queue(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
2169 2170

		TCP_SKB_CB(skb)->sacked &= ~TCPCB_LOST;
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		/*
		 * Count the retransmission made on RTO correctly (only when
		 * waiting for the first ACK and did not get it)...
		 */
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		if ((tp->frto_counter == 1) && !(flag & FLAG_DATA_ACKED)) {
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			/* For some reason this R-bit might get cleared? */
			if (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_RETRANS)
				tp->retrans_out += tcp_skb_pcount(skb);
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			/* ...enter this if branch just for the first segment */
			flag |= FLAG_DATA_ACKED;
		} else {
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			if (TCP_SKB_CB(skb)->sacked & TCPCB_RETRANS)
				tp->undo_marker = 0;
2184
			TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_RETRANS;
2185
		}
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		/* Marking forward transmissions that were made after RTO lost
		 * can cause unnecessary retransmissions in some scenarios,
		 * SACK blocks will mitigate that in some but not in all cases.
		 * We used to not mark them but it was causing break-ups with
		 * receivers that do only in-order receival.
		 *
		 * TODO: we could detect presence of such receiver and select
		 * different behavior per flow.
		 */
		if (!(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED)) {
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			TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
			tp->lost_out += tcp_skb_pcount(skb);
2199
			tp->retransmit_high = TCP_SKB_CB(skb)->end_seq;
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		}
	}
2202
	tcp_verify_left_out(tp);
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2204
	tp->snd_cwnd = tcp_packets_in_flight(tp) + allowed_segments;
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	tp->snd_cwnd_cnt = 0;
	tp->snd_cwnd_stamp = tcp_time_stamp;
	tp->frto_counter = 0;
2208
	tp->bytes_acked = 0;
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	tp->reordering = min_t(unsigned int, tp->reordering,
2211
			       sysctl_tcp_reordering);
2212
	tcp_set_ca_state(sk, TCP_CA_Loss);
2213
	tp->high_seq = tp->snd_nxt;
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	TCP_ECN_queue_cwr(tp);
2215

2216
	tcp_clear_all_retrans_hints(tp);
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}

2219
static void tcp_clear_retrans_partial(struct tcp_sock *tp)
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{
	tp->retrans_out = 0;
	tp->lost_out = 0;

	tp->undo_marker = 0;
	tp->undo_retrans = 0;
}

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void tcp_clear_retrans(struct tcp_sock *tp)
{
	tcp_clear_retrans_partial(tp);

	tp->fackets_out = 0;
	tp->sacked_out = 0;
}

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/* Enter Loss state. If "how" is not zero, forget all SACK information
 * and reset tags completely, otherwise preserve SACKs. If receiver
 * dropped its ofo queue, we will know this due to reneging detection.
 */
void tcp_enter_loss(struct sock *sk, int how)
{
2242
	const struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;

	/* Reduce ssthresh if it has not yet been made inside this window. */
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	if (icsk->icsk_ca_state <= TCP_CA_Disorder || tp->snd_una == tp->high_seq ||
	    (icsk->icsk_ca_state == TCP_CA_Loss && !icsk->icsk_retransmits)) {
		tp->prior_ssthresh = tcp_current_ssthresh(sk);
		tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
		tcp_ca_event(sk, CA_EVENT_LOSS);
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	}
	tp->snd_cwnd	   = 1;
	tp->snd_cwnd_cnt   = 0;
	tp->snd_cwnd_stamp = tcp_time_stamp;

2257
	tp->bytes_acked = 0;
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	tcp_clear_retrans_partial(tp);

	if (tcp_is_reno(tp))
		tcp_reset_reno_sack(tp);
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2263 2264 2265
	if (!how) {
		/* Push undo marker, if it was plain RTO and nothing
		 * was retransmitted. */
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		tp->undo_marker = tp->snd_una;
2267
	} else {
2268 2269
		tp->sacked_out = 0;
		tp->fackets_out = 0;
2270
	}
2271
	tcp_clear_all_retrans_hints(tp);
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2273 2274 2275
	tcp_for_write_queue(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
2276

2277
		if (TCP_SKB_CB(skb)->sacked & TCPCB_RETRANS)
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			tp->undo_marker = 0;
		TCP_SKB_CB(skb)->sacked &= (~TCPCB_TAGBITS)|TCPCB_SACKED_ACKED;
		if (!(TCP_SKB_CB(skb)->sacked&TCPCB_SACKED_ACKED) || how) {
			TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_ACKED;
			TCP_SKB_CB(skb)->sacked |= TCPCB_LOST;
			tp->lost_out += tcp_skb_pcount(skb);
2284
			tp->retransmit_high = TCP_SKB_CB(skb)->end_seq;
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		}
	}
2287
	tcp_verify_left_out(tp);
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	tp->reordering = min_t(unsigned int, tp->reordering,
2290
			       sysctl_tcp_reordering);
2291
	tcp_set_ca_state(sk, TCP_CA_Loss);
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	tp->high_seq = tp->snd_nxt;
	TCP_ECN_queue_cwr(tp);
2294
	/* Abort F-RTO algorithm if one is in progress */
2295
	tp->frto_counter = 0;
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}

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/* If ACK arrived pointing to a remembered SACK, it means that our
 * remembered SACKs do not reflect real state of receiver i.e.
 * receiver _host_ is heavily congested (or buggy).
 *
 * Do processing similar to RTO timeout.
 */
static int tcp_check_sack_reneging(struct sock *sk, int flag)
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{
2306
	if (flag & FLAG_SACK_RENEGING) {
2307
		struct inet_connection_sock *icsk = inet_csk(sk);
2308
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPSACKRENEGING);
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		tcp_enter_loss(sk, 1);
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		icsk->icsk_retransmits++;
2312
		tcp_retransmit_skb(sk, tcp_write_queue_head(sk));
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		inet_csk_reset_xmit_timer(sk, ICSK_TIME_RETRANS,
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					  icsk->icsk_rto, TCP_RTO_MAX);
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		return 1;
	}
	return 0;
}

2320
static inline int tcp_fackets_out(const struct tcp_sock *tp)
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{
2322
	return tcp_is_reno(tp) ? tp->sacked_out + 1 : tp->fackets_out;
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}

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/* Heurestics to calculate number of duplicate ACKs. There's no dupACKs
 * counter when SACK is enabled (without SACK, sacked_out is used for
 * that purpose).
 *
 * Instead, with FACK TCP uses fackets_out that includes both SACKed
 * segments up to the highest received SACK block so far and holes in
 * between them.
 *
 * With reordering, holes may still be in flight, so RFC3517 recovery
 * uses pure sacked_out (total number of SACKed segments) even though
 * it violates the RFC that uses duplicate ACKs, often these are equal
 * but when e.g. out-of-window ACKs or packet duplication occurs,
 * they differ. Since neither occurs due to loss, TCP should really
 * ignore them.
 */
2340
static inline int tcp_dupack_heuristics(const struct tcp_sock *tp)
2341 2342 2343 2344
{
	return tcp_is_fack(tp) ? tp->fackets_out : tp->sacked_out + 1;
}

2345 2346
static inline int tcp_skb_timedout(const struct sock *sk,
				   const struct sk_buff *skb)
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{
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	return tcp_time_stamp - TCP_SKB_CB(skb)->when > inet_csk(sk)->icsk_rto;
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}

2351
static inline int tcp_head_timedout(const struct sock *sk)
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{
2353
	const struct tcp_sock *tp = tcp_sk(sk);
2354

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	return tp->packets_out &&
2356
	       tcp_skb_timedout(sk, tcp_write_queue_head(sk));
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}

/* Linux NewReno/SACK/FACK/ECN state machine.
 * --------------------------------------
 *
 * "Open"	Normal state, no dubious events, fast path.
 * "Disorder"   In all the respects it is "Open",
 *		but requires a bit more attention. It is entered when
 *		we see some SACKs or dupacks. It is split of "Open"
 *		mainly to move some processing from fast path to slow one.
 * "CWR"	CWND was reduced due to some Congestion Notification event.
 *		It can be ECN, ICMP source quench, local device congestion.
 * "Recovery"	CWND was reduced, we are fast-retransmitting.
 * "Loss"	CWND was reduced due to RTO timeout or SACK reneging.
 *
 * tcp_fastretrans_alert() is entered:
 * - each incoming ACK, if state is not "Open"
 * - when arrived ACK is unusual, namely:
 *	* SACK
 *	* Duplicate ACK.
 *	* ECN ECE.
 *
 * Counting packets in flight is pretty simple.
 *
 *	in_flight = packets_out - left_out + retrans_out
 *
 *	packets_out is SND.NXT-SND.UNA counted in packets.
 *
 *	retrans_out is number of retransmitted segments.
 *
 *	left_out is number of segments left network, but not ACKed yet.
 *
 *		left_out = sacked_out + lost_out
 *
 *     sacked_out: Packets, which arrived to receiver out of order
 *		   and hence not ACKed. With SACKs this number is simply
 *		   amount of SACKed data. Even without SACKs
 *		   it is easy to give pretty reliable estimate of this number,
 *		   counting duplicate ACKs.
 *
 *       lost_out: Packets lost by network. TCP has no explicit
 *		   "loss notification" feedback from network (for now).
 *		   It means that this number can be only _guessed_.
 *		   Actually, it is the heuristics to predict lossage that
 *		   distinguishes different algorithms.
 *
 *	F.e. after RTO, when all the queue is considered as lost,
 *	lost_out = packets_out and in_flight = retrans_out.
 *
 *		Essentially, we have now two algorithms counting
 *		lost packets.
 *
 *		FACK: It is the simplest heuristics. As soon as we decided
 *		that something is lost, we decide that _all_ not SACKed
 *		packets until the most forward SACK are lost. I.e.
 *		lost_out = fackets_out - sacked_out and left_out = fackets_out.
 *		It is absolutely correct estimate, if network does not reorder
 *		packets. And it loses any connection to reality when reordering
 *		takes place. We use FACK by default until reordering
 *		is suspected on the path to this destination.
 *
 *		NewReno: when Recovery is entered, we assume that one segment
 *		is lost (classic Reno). While we are in Recovery and
 *		a partial ACK arrives, we assume that one more packet
 *		is lost (NewReno). This heuristics are the same in NewReno
 *		and SACK.
 *
 *  Imagine, that's all! Forget about all this shamanism about CWND inflation
 *  deflation etc. CWND is real congestion window, never inflated, changes
 *  only according to classic VJ rules.
 *
 * Really tricky (and requiring careful tuning) part of algorithm
 * is hidden in functions tcp_time_to_recover() and tcp_xmit_retransmit_queue().
 * The first determines the moment _when_ we should reduce CWND and,
 * hence, slow down forward transmission. In fact, it determines the moment
 * when we decide that hole is caused by loss, rather than by a reorder.
 *
 * tcp_xmit_retransmit_queue() decides, _what_ we should retransmit to fill
 * holes, caused by lost packets.
 *
 * And the most logically complicated part of algorithm is undo
 * heuristics. We detect false retransmits due to both too early
 * fast retransmit (reordering) and underestimated RTO, analyzing
 * timestamps and D-SACKs. When we detect that some segments were
 * retransmitted by mistake and CWND reduction was wrong, we undo
 * window reduction and abort recovery phase. This logic is hidden
 * inside several functions named tcp_try_undo_<something>.
 */

/* This function decides, when we should leave Disordered state
 * and enter Recovery phase, reducing congestion window.
 *
 * Main question: may we further continue forward transmission
 * with the same cwnd?
 */
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static int tcp_time_to_recover(struct sock *sk)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	__u32 packets_out;

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	/* Do not perform any recovery during F-RTO algorithm */
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	if (tp->frto_counter)
		return 0;

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	/* Trick#1: The loss is proven. */
	if (tp->lost_out)
		return 1;

	/* Not-A-Trick#2 : Classic rule... */
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	if (tcp_dupack_heuristics(tp) > tp->reordering)
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		return 1;

	/* Trick#3 : when we use RFC2988 timer restart, fast
	 * retransmit can be triggered by timeout of queue head.
	 */
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	if (tcp_is_fack(tp) && tcp_head_timedout(sk))
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		return 1;

	/* Trick#4: It is still not OK... But will it be useful to delay
	 * recovery more?
	 */
	packets_out = tp->packets_out;
	if (packets_out <= tp->reordering &&
	    tp->sacked_out >= max_t(__u32, packets_out/2, sysctl_tcp_reordering) &&
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	    !tcp_may_send_now(sk)) {
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		/* We have nothing to send. This connection is limited
		 * either by receiver window or by application.
		 */
		return 1;
	}

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	/* If a thin stream is detected, retransmit after first
	 * received dupack. Employ only if SACK is supported in order
	 * to avoid possible corner-case series of spurious retransmissions
	 * Use only if there are no unsent data.
	 */
	if ((tp->thin_dupack || sysctl_tcp_thin_dupack) &&
	    tcp_stream_is_thin(tp) && tcp_dupack_heuristics(tp) > 1 &&
	    tcp_is_sack(tp) && !tcp_send_head(sk))
		return 1;

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	return 0;
}

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/* New heuristics: it is possible only after we switched to restart timer
 * each time when something is ACKed. Hence, we can detect timed out packets
 * during fast retransmit without falling to slow start.
 *
 * Usefulness of this as is very questionable, since we should know which of
 * the segments is the next to timeout which is relatively expensive to find
 * in general case unless we add some data structure just for that. The
 * current approach certainly won't find the right one too often and when it
 * finally does find _something_ it usually marks large part of the window
 * right away (because a retransmission with a larger timestamp blocks the
 * loop from advancing). -ij
 */
static void tcp_timeout_skbs(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;

	if (!tcp_is_fack(tp) || !tcp_head_timedout(sk))
		return;

	skb = tp->scoreboard_skb_hint;
	if (tp->scoreboard_skb_hint == NULL)
		skb = tcp_write_queue_head(sk);

	tcp_for_write_queue_from(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
		if (!tcp_skb_timedout(sk, skb))
			break;

		tcp_skb_mark_lost(tp, skb);
	}

	tp->scoreboard_skb_hint = skb;

	tcp_verify_left_out(tp);
}

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/* Detect loss in event "A" above by marking head of queue up as lost.
 * For FACK or non-SACK(Reno) senders, the first "packets" number of segments
 * are considered lost. For RFC3517 SACK, a segment is considered lost if it
 * has at least tp->reordering SACKed seqments above it; "packets" refers to
 * the maximum SACKed segments to pass before reaching this limit.
2544
 */
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static void tcp_mark_head_lost(struct sock *sk, int packets, int mark_head)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	struct sk_buff *skb;
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	int cnt, oldcnt;
	int err;
	unsigned int mss;
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	/* Use SACK to deduce losses of new sequences sent during recovery */
	const u32 loss_high = tcp_is_sack(tp) ?  tp->snd_nxt : tp->high_seq;
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	WARN_ON(packets > tp->packets_out);
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	if (tp->lost_skb_hint) {
		skb = tp->lost_skb_hint;
		cnt = tp->lost_cnt_hint;
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		/* Head already handled? */
		if (mark_head && skb != tcp_write_queue_head(sk))
			return;
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	} else {
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		skb = tcp_write_queue_head(sk);
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		cnt = 0;
	}
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	tcp_for_write_queue_from(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
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		/* TODO: do this better */
		/* this is not the most efficient way to do this... */
		tp->lost_skb_hint = skb;
		tp->lost_cnt_hint = cnt;
2574

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		if (after(TCP_SKB_CB(skb)->end_seq, loss_high))
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			break;

		oldcnt = cnt;
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		if (tcp_is_fack(tp) || tcp_is_reno(tp) ||
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		    (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED))
			cnt += tcp_skb_pcount(skb);

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		if (cnt > packets) {
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			if ((tcp_is_sack(tp) && !tcp_is_fack(tp)) ||
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			    (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED) ||
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			    (oldcnt >= packets))
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				break;

			mss = skb_shinfo(skb)->gso_size;
			err = tcp_fragment(sk, skb, (packets - oldcnt) * mss, mss);
			if (err < 0)
				break;
			cnt = packets;
		}

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		tcp_skb_mark_lost(tp, skb);
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		if (mark_head)
			break;
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	}
2601
	tcp_verify_left_out(tp);
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}

/* Account newly detected lost packet(s) */

2606
static void tcp_update_scoreboard(struct sock *sk, int fast_rexmit)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (tcp_is_reno(tp)) {
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		tcp_mark_head_lost(sk, 1, 1);
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	} else if (tcp_is_fack(tp)) {
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		int lost = tp->fackets_out - tp->reordering;
		if (lost <= 0)
			lost = 1;
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		tcp_mark_head_lost(sk, lost, 0);
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	} else {
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		int sacked_upto = tp->sacked_out - tp->reordering;
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		if (sacked_upto >= 0)
			tcp_mark_head_lost(sk, sacked_upto, 0);
		else if (fast_rexmit)
			tcp_mark_head_lost(sk, 1, 1);
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	}

2625
	tcp_timeout_skbs(sk);
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}

/* CWND moderation, preventing bursts due to too big ACKs
 * in dubious situations.
 */
static inline void tcp_moderate_cwnd(struct tcp_sock *tp)
{
	tp->snd_cwnd = min(tp->snd_cwnd,
2634
			   tcp_packets_in_flight(tp) + tcp_max_burst(tp));
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	tp->snd_cwnd_stamp = tcp_time_stamp;
}

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/* Lower bound on congestion window is slow start threshold
 * unless congestion avoidance choice decides to overide it.
 */
static inline u32 tcp_cwnd_min(const struct sock *sk)
{
	const struct tcp_congestion_ops *ca_ops = inet_csk(sk)->icsk_ca_ops;

	return ca_ops->min_cwnd ? ca_ops->min_cwnd(sk) : tcp_sk(sk)->snd_ssthresh;
}

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/* Decrease cwnd each second ack. */
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static void tcp_cwnd_down(struct sock *sk, int flag)
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{
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	struct tcp_sock *tp = tcp_sk(sk);
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	int decr = tp->snd_cwnd_cnt + 1;

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	if ((flag & (FLAG_ANY_PROGRESS | FLAG_DSACKING_ACK)) ||
	    (tcp_is_reno(tp) && !(flag & FLAG_NOT_DUP))) {
		tp->snd_cwnd_cnt = decr & 1;
2657
		decr >>= 1;
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		if (decr && tp->snd_cwnd > tcp_cwnd_min(sk))
			tp->snd_cwnd -= decr;
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2662
		tp->snd_cwnd = min(tp->snd_cwnd, tcp_packets_in_flight(tp) + 1);
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		tp->snd_cwnd_stamp = tcp_time_stamp;
	}
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}

/* Nothing was retransmitted or returned timestamp is less
 * than timestamp of the first retransmission.
 */
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static inline int tcp_packet_delayed(const struct tcp_sock *tp)
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{
	return !tp->retrans_stamp ||
		(tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr &&
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		 before(tp->rx_opt.rcv_tsecr, tp->retrans_stamp));
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}

/* Undo procedures. */

#if FASTRETRANS_DEBUG > 1
2680
static void DBGUNDO(struct sock *sk, const char *msg)
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{
2682
	struct tcp_sock *tp = tcp_sk(sk);
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	struct inet_sock *inet = inet_sk(sk);
2684

2685
	if (sk->sk_family == AF_INET) {
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		printk(KERN_DEBUG "Undo %s %pI4/%u c%u l%u ss%u/%u p%u\n",
2687
		       msg,
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		       &inet->inet_daddr, ntohs(inet->inet_dport),
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		       tp->snd_cwnd, tcp_left_out(tp),
		       tp->snd_ssthresh, tp->prior_ssthresh,
		       tp->packets_out);
	}
2693
#if IS_ENABLED(CONFIG_IPV6)
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	else if (sk->sk_family == AF_INET6) {
		struct ipv6_pinfo *np = inet6_sk(sk);
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		printk(KERN_DEBUG "Undo %s %pI6/%u c%u l%u ss%u/%u p%u\n",
2697
		       msg,
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		       &np->daddr, ntohs(inet->inet_dport),
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		       tp->snd_cwnd, tcp_left_out(tp),
		       tp->snd_ssthresh, tp->prior_ssthresh,
		       tp->packets_out);
	}
#endif
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}
#else
#define DBGUNDO(x...) do { } while (0)
#endif

2709
static void tcp_undo_cwr(struct sock *sk, const bool undo_ssthresh)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (tp->prior_ssthresh) {
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		const struct inet_connection_sock *icsk = inet_csk(sk);

		if (icsk->icsk_ca_ops->undo_cwnd)
			tp->snd_cwnd = icsk->icsk_ca_ops->undo_cwnd(sk);
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		else
2719
			tp->snd_cwnd = max(tp->snd_cwnd, tp->snd_ssthresh << 1);
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2721
		if (undo_ssthresh && tp->prior_ssthresh > tp->snd_ssthresh) {
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			tp->snd_ssthresh = tp->prior_ssthresh;
			TCP_ECN_withdraw_cwr(tp);
		}
	} else {
		tp->snd_cwnd = max(tp->snd_cwnd, tp->snd_ssthresh);
	}
	tp->snd_cwnd_stamp = tcp_time_stamp;
}

2731
static inline int tcp_may_undo(const struct tcp_sock *tp)
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{
2733
	return tp->undo_marker && (!tp->undo_retrans || tcp_packet_delayed(tp));
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}

/* People celebrate: "We love our President!" */
2737
static int tcp_try_undo_recovery(struct sock *sk)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (tcp_may_undo(tp)) {
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		int mib_idx;

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		/* Happy end! We did not retransmit anything
		 * or our original transmission succeeded.
		 */
2747
		DBGUNDO(sk, inet_csk(sk)->icsk_ca_state == TCP_CA_Loss ? "loss" : "retrans");
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		tcp_undo_cwr(sk, true);
2749
		if (inet_csk(sk)->icsk_ca_state == TCP_CA_Loss)
2750
			mib_idx = LINUX_MIB_TCPLOSSUNDO;
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		else
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			mib_idx = LINUX_MIB_TCPFULLUNDO;

2754
		NET_INC_STATS_BH(sock_net(sk), mib_idx);
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		tp->undo_marker = 0;
	}
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	if (tp->snd_una == tp->high_seq && tcp_is_reno(tp)) {
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		/* Hold old state until something *above* high_seq
		 * is ACKed. For Reno it is MUST to prevent false
		 * fast retransmits (RFC2582). SACK TCP is safe. */
		tcp_moderate_cwnd(tp);
		return 1;
	}
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	tcp_set_ca_state(sk, TCP_CA_Open);
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	return 0;
}

/* Try to undo cwnd reduction, because D-SACKs acked all retransmitted data */
2769
static void tcp_try_undo_dsack(struct sock *sk)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (tp->undo_marker && !tp->undo_retrans) {
2774
		DBGUNDO(sk, "D-SACK");
2775
		tcp_undo_cwr(sk, true);
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		tp->undo_marker = 0;
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPDSACKUNDO);
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	}
}

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/* We can clear retrans_stamp when there are no retransmissions in the
 * window. It would seem that it is trivially available for us in
 * tp->retrans_out, however, that kind of assumptions doesn't consider
 * what will happen if errors occur when sending retransmission for the
 * second time. ...It could the that such segment has only
 * TCPCB_EVER_RETRANS set at the present time. It seems that checking
 * the head skb is enough except for some reneging corner cases that
 * are not worth the effort.
 *
 * Main reason for all this complexity is the fact that connection dying
 * time now depends on the validity of the retrans_stamp, in particular,
 * that successive retransmissions of a segment must not advance
 * retrans_stamp under any conditions.
 */
2795
static int tcp_any_retrans_done(const struct sock *sk)
2796
{
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	const struct tcp_sock *tp = tcp_sk(sk);
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	struct sk_buff *skb;

	if (tp->retrans_out)
		return 1;

	skb = tcp_write_queue_head(sk);
	if (unlikely(skb && TCP_SKB_CB(skb)->sacked & TCPCB_EVER_RETRANS))
		return 1;

	return 0;
}

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/* Undo during fast recovery after partial ACK. */

2812
static int tcp_try_undo_partial(struct sock *sk, int acked)
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{
2814
	struct tcp_sock *tp = tcp_sk(sk);
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	/* Partial ACK arrived. Force Hoe's retransmit. */
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	int failed = tcp_is_reno(tp) || (tcp_fackets_out(tp) > tp->reordering);
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	if (tcp_may_undo(tp)) {
		/* Plain luck! Hole if filled with delayed
		 * packet, rather than with a retransmit.
		 */
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		if (!tcp_any_retrans_done(sk))
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			tp->retrans_stamp = 0;

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		tcp_update_reordering(sk, tcp_fackets_out(tp) + acked, 1);
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		DBGUNDO(sk, "Hoe");
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		tcp_undo_cwr(sk, false);
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPPARTIALUNDO);
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		/* So... Do not make Hoe's retransmit yet.
		 * If the first packet was delayed, the rest
		 * ones are most probably delayed as well.
		 */
		failed = 0;
	}
	return failed;
}

/* Undo during loss recovery after partial ACK. */
2841
static int tcp_try_undo_loss(struct sock *sk)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (tcp_may_undo(tp)) {
		struct sk_buff *skb;
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		tcp_for_write_queue(skb, sk) {
			if (skb == tcp_send_head(sk))
				break;
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			TCP_SKB_CB(skb)->sacked &= ~TCPCB_LOST;
		}
2852

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		tcp_clear_all_retrans_hints(tp);
2854

2855
		DBGUNDO(sk, "partial loss");
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		tp->lost_out = 0;
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		tcp_undo_cwr(sk, true);
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPLOSSUNDO);
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		inet_csk(sk)->icsk_retransmits = 0;
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		tp->undo_marker = 0;
2861
		if (tcp_is_sack(tp))
2862
			tcp_set_ca_state(sk, TCP_CA_Open);
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		return 1;
	}
	return 0;
}

2868
static inline void tcp_complete_cwr(struct sock *sk)
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{
2870
	struct tcp_sock *tp = tcp_sk(sk);
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	/* Do not moderate cwnd if it's already undone in cwr or recovery. */
	if (tp->undo_marker) {
2874
		if (inet_csk(sk)->icsk_ca_state == TCP_CA_CWR) {
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			tp->snd_cwnd = min(tp->snd_cwnd, tp->snd_ssthresh);
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			tp->snd_cwnd_stamp = tcp_time_stamp;
		} else if (tp->snd_ssthresh < TCP_INFINITE_SSTHRESH) {
			/* PRR algorithm. */
2879
			tp->snd_cwnd = tp->snd_ssthresh;
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			tp->snd_cwnd_stamp = tcp_time_stamp;
		}
2882
	}
2883
	tcp_ca_event(sk, CA_EVENT_COMPLETE_CWR);
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}

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static void tcp_try_keep_open(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	int state = TCP_CA_Open;

2891
	if (tcp_left_out(tp) || tcp_any_retrans_done(sk))
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		state = TCP_CA_Disorder;

	if (inet_csk(sk)->icsk_ca_state != state) {
		tcp_set_ca_state(sk, state);
		tp->high_seq = tp->snd_nxt;
	}
}

2900
static void tcp_try_to_open(struct sock *sk, int flag)
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{
2902 2903
	struct tcp_sock *tp = tcp_sk(sk);

2904 2905
	tcp_verify_left_out(tp);

2906
	if (!tp->frto_counter && !tcp_any_retrans_done(sk))
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		tp->retrans_stamp = 0;

2909
	if (flag & FLAG_ECE)
2910
		tcp_enter_cwr(sk, 1);
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2912
	if (inet_csk(sk)->icsk_ca_state != TCP_CA_CWR) {
2913
		tcp_try_keep_open(sk);
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		if (inet_csk(sk)->icsk_ca_state != TCP_CA_Open)
			tcp_moderate_cwnd(tp);
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	} else {
2917
		tcp_cwnd_down(sk, flag);
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	}
}

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static void tcp_mtup_probe_failed(struct sock *sk)
{
	struct inet_connection_sock *icsk = inet_csk(sk);

	icsk->icsk_mtup.search_high = icsk->icsk_mtup.probe_size - 1;
	icsk->icsk_mtup.probe_size = 0;
}

2929
static void tcp_mtup_probe_success(struct sock *sk)
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{
	struct tcp_sock *tp = tcp_sk(sk);
	struct inet_connection_sock *icsk = inet_csk(sk);

	/* FIXME: breaks with very large cwnd */
	tp->prior_ssthresh = tcp_current_ssthresh(sk);
	tp->snd_cwnd = tp->snd_cwnd *
		       tcp_mss_to_mtu(sk, tp->mss_cache) /
		       icsk->icsk_mtup.probe_size;
	tp->snd_cwnd_cnt = 0;
	tp->snd_cwnd_stamp = tcp_time_stamp;
2941
	tp->snd_ssthresh = tcp_current_ssthresh(sk);
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	icsk->icsk_mtup.search_low = icsk->icsk_mtup.probe_size;
	icsk->icsk_mtup.probe_size = 0;
	tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
}

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/* Do a simple retransmit without using the backoff mechanisms in
 * tcp_timer. This is used for path mtu discovery.
 * The socket is already locked here.
 */
void tcp_simple_retransmit(struct sock *sk)
{
	const struct inet_connection_sock *icsk = inet_csk(sk);
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb;
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	unsigned int mss = tcp_current_mss(sk);
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	u32 prior_lost = tp->lost_out;

	tcp_for_write_queue(skb, sk) {
		if (skb == tcp_send_head(sk))
			break;
2963
		if (tcp_skb_seglen(skb) > mss &&
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		    !(TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED)) {
			if (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_RETRANS) {
				TCP_SKB_CB(skb)->sacked &= ~TCPCB_SACKED_RETRANS;
				tp->retrans_out -= tcp_skb_pcount(skb);
			}
			tcp_skb_mark_lost_uncond_verify(tp, skb);
		}
	}

	tcp_clear_retrans_hints_partial(tp);

	if (prior_lost == tp->lost_out)
		return;

	if (tcp_is_reno(tp))
		tcp_limit_reno_sacked(tp);

	tcp_verify_left_out(tp);

	/* Don't muck with the congestion window here.
	 * Reason is that we do not increase amount of _data_
	 * in network, but units changed and effective
	 * cwnd/ssthresh really reduced now.
	 */
	if (icsk->icsk_ca_state != TCP_CA_Loss) {
		tp->high_seq = tp->snd_nxt;
		tp->snd_ssthresh = tcp_current_ssthresh(sk);
		tp->prior_ssthresh = 0;
		tp->undo_marker = 0;
		tcp_set_ca_state(sk, TCP_CA_Loss);
	}
	tcp_xmit_retransmit_queue(sk);
}
2997
EXPORT_SYMBOL(tcp_simple_retransmit);
2998

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/* This function implements the PRR algorithm, specifcally the PRR-SSRB
 * (proportional rate reduction with slow start reduction bound) as described in
 * http://www.ietf.org/id/draft-mathis-tcpm-proportional-rate-reduction-01.txt.
 * It computes the number of packets to send (sndcnt) based on packets newly
 * delivered:
 *   1) If the packets in flight is larger than ssthresh, PRR spreads the
 *	cwnd reductions across a full RTT.
 *   2) If packets in flight is lower than ssthresh (such as due to excess
 *	losses and/or application stalls), do not perform any further cwnd
 *	reductions, but instead slow start up to ssthresh.
 */
static void tcp_update_cwnd_in_recovery(struct sock *sk, int newly_acked_sacked,
					int fast_rexmit, int flag)
{
	struct tcp_sock *tp = tcp_sk(sk);
	int sndcnt = 0;
	int delta = tp->snd_ssthresh - tcp_packets_in_flight(tp);

	if (tcp_packets_in_flight(tp) > tp->snd_ssthresh) {
		u64 dividend = (u64)tp->snd_ssthresh * tp->prr_delivered +
			       tp->prior_cwnd - 1;
		sndcnt = div_u64(dividend, tp->prior_cwnd) - tp->prr_out;
	} else {
		sndcnt = min_t(int, delta,
			       max_t(int, tp->prr_delivered - tp->prr_out,
				     newly_acked_sacked) + 1);
	}

	sndcnt = max(sndcnt, (fast_rexmit ? 1 : 0));
	tp->snd_cwnd = tcp_packets_in_flight(tp) + sndcnt;
}

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/* Process an event, which can update packets-in-flight not trivially.
 * Main goal of this function is to calculate new estimate for left_out,
 * taking into account both packets sitting in receiver's buffer and
 * packets lost by network.
 *
 * Besides that it does CWND reduction, when packet loss is detected
 * and changes state of machine.
 *
 * It does _not_ decide what to send, it is made in function
 * tcp_xmit_retransmit_queue().
 */
3042
static void tcp_fastretrans_alert(struct sock *sk, int pkts_acked,
3043
				  int prior_sacked, bool is_dupack,
3044
				  int flag)
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{
3046
	struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
3048
	int do_lost = is_dupack || ((flag & FLAG_DATA_SACKED) &&
3049
				    (tcp_fackets_out(tp) > tp->reordering));
3050
	int newly_acked_sacked = 0;
3051
	int fast_rexmit = 0, mib_idx;
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3053
	if (WARN_ON(!tp->packets_out && tp->sacked_out))
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		tp->sacked_out = 0;
3055
	if (WARN_ON(!tp->sacked_out && tp->fackets_out))
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		tp->fackets_out = 0;

3058
	/* Now state machine starts.
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	 * A. ECE, hence prohibit cwnd undoing, the reduction is required. */
3060
	if (flag & FLAG_ECE)
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		tp->prior_ssthresh = 0;

	/* B. In all the states check for reneging SACKs. */
3064
	if (tcp_check_sack_reneging(sk, flag))
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		return;

3067
	/* C. Check consistency of the current state. */
3068
	tcp_verify_left_out(tp);
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3070
	/* D. Check state exit conditions. State can be terminated
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	 *    when high_seq is ACKed. */
3072
	if (icsk->icsk_ca_state == TCP_CA_Open) {
3073
		WARN_ON(tp->retrans_out != 0);
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		tp->retrans_stamp = 0;
	} else if (!before(tp->snd_una, tp->high_seq)) {
3076
		switch (icsk->icsk_ca_state) {
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		case TCP_CA_Loss:
3078
			icsk->icsk_retransmits = 0;
3079
			if (tcp_try_undo_recovery(sk))
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				return;
			break;

		case TCP_CA_CWR:
			/* CWR is to be held something *above* high_seq
			 * is ACKed for CWR bit to reach receiver. */
			if (tp->snd_una != tp->high_seq) {
3087 3088
				tcp_complete_cwr(sk);
				tcp_set_ca_state(sk, TCP_CA_Open);
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			}
			break;

		case TCP_CA_Recovery:
3093
			if (tcp_is_reno(tp))
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				tcp_reset_reno_sack(tp);
3095
			if (tcp_try_undo_recovery(sk))
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				return;
3097
			tcp_complete_cwr(sk);
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			break;
		}
	}

3102
	/* E. Process state. */
3103
	switch (icsk->icsk_ca_state) {
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	case TCP_CA_Recovery:
3105
		if (!(flag & FLAG_SND_UNA_ADVANCED)) {
3106
			if (tcp_is_reno(tp) && is_dupack)
3107
				tcp_add_reno_sack(sk);
3108 3109
		} else
			do_lost = tcp_try_undo_partial(sk, pkts_acked);
3110
		newly_acked_sacked = pkts_acked + tp->sacked_out - prior_sacked;
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		break;
	case TCP_CA_Loss:
3113
		if (flag & FLAG_DATA_ACKED)
3114
			icsk->icsk_retransmits = 0;
3115 3116
		if (tcp_is_reno(tp) && flag & FLAG_SND_UNA_ADVANCED)
			tcp_reset_reno_sack(tp);
3117
		if (!tcp_try_undo_loss(sk)) {
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			tcp_moderate_cwnd(tp);
			tcp_xmit_retransmit_queue(sk);
			return;
		}
3122
		if (icsk->icsk_ca_state != TCP_CA_Open)
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			return;
		/* Loss is undone; fall through to processing in Open state. */
	default:
3126
		if (tcp_is_reno(tp)) {
3127
			if (flag & FLAG_SND_UNA_ADVANCED)
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				tcp_reset_reno_sack(tp);
			if (is_dupack)
3130
				tcp_add_reno_sack(sk);
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		}
3132
		newly_acked_sacked = pkts_acked + tp->sacked_out - prior_sacked;
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3134
		if (icsk->icsk_ca_state <= TCP_CA_Disorder)
3135
			tcp_try_undo_dsack(sk);
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3137 3138
		if (!tcp_time_to_recover(sk)) {
			tcp_try_to_open(sk, flag);
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			return;
		}

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		/* MTU probe failure: don't reduce cwnd */
		if (icsk->icsk_ca_state < TCP_CA_CWR &&
		    icsk->icsk_mtup.probe_size &&
3145
		    tp->snd_una == tp->mtu_probe.probe_seq_start) {
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			tcp_mtup_probe_failed(sk);
			/* Restores the reduction we did in tcp_mtup_probe() */
			tp->snd_cwnd++;
			tcp_simple_retransmit(sk);
			return;
		}

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		/* Otherwise enter Recovery state */

3155
		if (tcp_is_reno(tp))
3156
			mib_idx = LINUX_MIB_TCPRENORECOVERY;
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		else
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			mib_idx = LINUX_MIB_TCPSACKRECOVERY;

3160
		NET_INC_STATS_BH(sock_net(sk), mib_idx);
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		tp->high_seq = tp->snd_nxt;
		tp->prior_ssthresh = 0;
		tp->undo_marker = tp->snd_una;
		tp->undo_retrans = tp->retrans_out;

3167
		if (icsk->icsk_ca_state < TCP_CA_CWR) {
3168
			if (!(flag & FLAG_ECE))
3169 3170
				tp->prior_ssthresh = tcp_current_ssthresh(sk);
			tp->snd_ssthresh = icsk->icsk_ca_ops->ssthresh(sk);
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			TCP_ECN_queue_cwr(tp);
		}

3174
		tp->bytes_acked = 0;
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		tp->snd_cwnd_cnt = 0;
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		tp->prior_cwnd = tp->snd_cwnd;
		tp->prr_delivered = 0;
		tp->prr_out = 0;
3179
		tcp_set_ca_state(sk, TCP_CA_Recovery);
3180
		fast_rexmit = 1;
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	}

3183 3184
	if (do_lost || (tcp_is_fack(tp) && tcp_head_timedout(sk)))
		tcp_update_scoreboard(sk, fast_rexmit);
3185 3186
	tp->prr_delivered += newly_acked_sacked;
	tcp_update_cwnd_in_recovery(sk, newly_acked_sacked, fast_rexmit, flag);
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	tcp_xmit_retransmit_queue(sk);
}

3190
void tcp_valid_rtt_meas(struct sock *sk, u32 seq_rtt)
3191 3192 3193 3194 3195
{
	tcp_rtt_estimator(sk, seq_rtt);
	tcp_set_rto(sk);
	inet_csk(sk)->icsk_backoff = 0;
}
3196
EXPORT_SYMBOL(tcp_valid_rtt_meas);
3197

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/* Read draft-ietf-tcplw-high-performance before mucking
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 * with this code. (Supersedes RFC1323)
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 */
3201
static void tcp_ack_saw_tstamp(struct sock *sk, int flag)
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{
	/* RTTM Rule: A TSecr value received in a segment is used to
	 * update the averaged RTT measurement only if the segment
	 * acknowledges some new data, i.e., only if it advances the
	 * left edge of the send window.
	 *
	 * See draft-ietf-tcplw-high-performance-00, section 3.3.
	 * 1998/04/10 Andrey V. Savochkin <saw@msu.ru>
	 *
	 * Changed: reset backoff as soon as we see the first valid sample.
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	 * If we do not, we get strongly overestimated rto. With timestamps
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	 * samples are accepted even from very old segments: f.e., when rtt=1
	 * increases to 8, we retransmit 5 times and after 8 seconds delayed
	 * answer arrives rto becomes 120 seconds! If at least one of segments
	 * in window is lost... Voila.	 			--ANK (010210)
	 */
3218
	struct tcp_sock *tp = tcp_sk(sk);
3219 3220

	tcp_valid_rtt_meas(sk, tcp_time_stamp - tp->rx_opt.rcv_tsecr);
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}

3223
static void tcp_ack_no_tstamp(struct sock *sk, u32 seq_rtt, int flag)
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{
	/* We don't have a timestamp. Can only use
	 * packets that are not retransmitted to determine
	 * rtt estimates. Also, we must not reset the
	 * backoff for rto until we get a non-retransmitted
	 * packet. This allows us to deal with a situation
	 * where the network delay has increased suddenly.
	 * I.e. Karn's algorithm. (SIGCOMM '87, p5.)
	 */

	if (flag & FLAG_RETRANS_DATA_ACKED)
		return;

3237
	tcp_valid_rtt_meas(sk, seq_rtt);
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}

3240
static inline void tcp_ack_update_rtt(struct sock *sk, const int flag,
3241
				      const s32 seq_rtt)
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{
3243
	const struct tcp_sock *tp = tcp_sk(sk);
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	/* Note that peer MAY send zero echo. In this case it is ignored. (rfc1323) */
	if (tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr)
3246
		tcp_ack_saw_tstamp(sk, flag);
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	else if (seq_rtt >= 0)
3248
		tcp_ack_no_tstamp(sk, seq_rtt, flag);
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}

3251
static void tcp_cong_avoid(struct sock *sk, u32 ack, u32 in_flight)
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{
3253
	const struct inet_connection_sock *icsk = inet_csk(sk);
3254
	icsk->icsk_ca_ops->cong_avoid(sk, ack, in_flight);
3255
	tcp_sk(sk)->snd_cwnd_stamp = tcp_time_stamp;
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}

/* Restart timer after forward progress on connection.
 * RFC2988 recommends to restart timer to now+rto.
 */
3261
static void tcp_rearm_rto(struct sock *sk)
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{
3263
	const struct tcp_sock *tp = tcp_sk(sk);
3264

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	if (!tp->packets_out) {
3266
		inet_csk_clear_xmit_timer(sk, ICSK_TIME_RETRANS);
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	} else {
3268 3269
		inet_csk_reset_xmit_timer(sk, ICSK_TIME_RETRANS,
					  inet_csk(sk)->icsk_rto, TCP_RTO_MAX);
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	}
}

3273
/* If we get here, the whole TSO packet has not been acked. */
3274
static u32 tcp_tso_acked(struct sock *sk, struct sk_buff *skb)
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{
	struct tcp_sock *tp = tcp_sk(sk);
3277
	u32 packets_acked;
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3279
	BUG_ON(!after(TCP_SKB_CB(skb)->end_seq, tp->snd_una));
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	packets_acked = tcp_skb_pcount(skb);
3282
	if (tcp_trim_head(sk, skb, tp->snd_una - TCP_SKB_CB(skb)->seq))
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		return 0;
	packets_acked -= tcp_skb_pcount(skb);

	if (packets_acked) {
		BUG_ON(tcp_skb_pcount(skb) == 0);
3288
		BUG_ON(!before(TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq));
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	}

3291
	return packets_acked;
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}

3294 3295 3296 3297
/* Remove acknowledged frames from the retransmission queue. If our packet
 * is before the ack sequence we can discard it as it's confirmed to have
 * arrived at the other end.
 */
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3298 3299
static int tcp_clean_rtx_queue(struct sock *sk, int prior_fackets,
			       u32 prior_snd_una)
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3300 3301
{
	struct tcp_sock *tp = tcp_sk(sk);
3302
	const struct inet_connection_sock *icsk = inet_csk(sk);
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3303
	struct sk_buff *skb;
3304
	u32 now = tcp_time_stamp;
3305
	int fully_acked = 1;
3306
	int flag = 0;
3307
	u32 pkts_acked = 0;
3308
	u32 reord = tp->packets_out;
3309
	u32 prior_sacked = tp->sacked_out;
3310
	s32 seq_rtt = -1;
3311
	s32 ca_seq_rtt = -1;
3312
	ktime_t last_ackt = net_invalid_timestamp();
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3313

3314
	while ((skb = tcp_write_queue_head(sk)) && skb != tcp_send_head(sk)) {
3315
		struct tcp_skb_cb *scb = TCP_SKB_CB(skb);
3316
		u32 acked_pcount;
3317
		u8 sacked = scb->sacked;
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3318

3319
		/* Determine how many packets and what bytes were acked, tso and else */
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3320
		if (after(scb->end_seq, tp->snd_una)) {
3321 3322 3323 3324
			if (tcp_skb_pcount(skb) == 1 ||
			    !after(tp->snd_una, scb->seq))
				break;

3325 3326
			acked_pcount = tcp_tso_acked(sk, skb);
			if (!acked_pcount)
3327 3328 3329 3330
				break;

			fully_acked = 0;
		} else {
3331
			acked_pcount = tcp_skb_pcount(skb);
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3332 3333
		}

3334 3335
		if (sacked & TCPCB_RETRANS) {
			if (sacked & TCPCB_SACKED_RETRANS)
3336
				tp->retrans_out -= acked_pcount;
3337 3338 3339
			flag |= FLAG_RETRANS_DATA_ACKED;
			ca_seq_rtt = -1;
			seq_rtt = -1;
3340
			if ((flag & FLAG_DATA_ACKED) || (acked_pcount > 1))
3341
				flag |= FLAG_NONHEAD_RETRANS_ACKED;
3342
		} else {
3343 3344
			ca_seq_rtt = now - scb->when;
			last_ackt = skb->tstamp;
3345
			if (seq_rtt < 0) {
3346
				seq_rtt = ca_seq_rtt;
3347
			}
3348
			if (!(sacked & TCPCB_SACKED_ACKED))
3349
				reord = min(pkts_acked, reord);
3350
		}
3351 3352

		if (sacked & TCPCB_SACKED_ACKED)
3353
			tp->sacked_out -= acked_pcount;
3354
		if (sacked & TCPCB_LOST)
3355
			tp->lost_out -= acked_pcount;
3356

3357 3358
		tp->packets_out -= acked_pcount;
		pkts_acked += acked_pcount;
3359

3360 3361 3362 3363 3364 3365 3366
		/* Initial outgoing SYN's get put onto the write_queue
		 * just like anything else we transmit.  It is not
		 * true data, and if we misinform our callers that
		 * this ACK acks real data, we will erroneously exit
		 * connection startup slow start one packet too
		 * quickly.  This is severely frowned upon behavior.
		 */
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3367
		if (!(scb->tcp_flags & TCPHDR_SYN)) {
3368 3369 3370 3371 3372 3373
			flag |= FLAG_DATA_ACKED;
		} else {
			flag |= FLAG_SYN_ACKED;
			tp->retrans_stamp = 0;
		}

3374 3375 3376
		if (!fully_acked)
			break;

3377
		tcp_unlink_write_queue(skb, sk);
3378
		sk_wmem_free_skb(sk, skb);
3379
		tp->scoreboard_skb_hint = NULL;
3380 3381
		if (skb == tp->retransmit_skb_hint)
			tp->retransmit_skb_hint = NULL;
3382 3383
		if (skb == tp->lost_skb_hint)
			tp->lost_skb_hint = NULL;
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3384 3385
	}

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3386 3387 3388
	if (likely(between(tp->snd_up, prior_snd_una, tp->snd_una)))
		tp->snd_up = tp->snd_una;

3389 3390 3391
	if (skb && (TCP_SKB_CB(skb)->sacked & TCPCB_SACKED_ACKED))
		flag |= FLAG_SACK_RENEGING;

3392
	if (flag & FLAG_ACKED) {
3393 3394 3395
		const struct tcp_congestion_ops *ca_ops
			= inet_csk(sk)->icsk_ca_ops;

3396 3397 3398 3399 3400
		if (unlikely(icsk->icsk_mtup.probe_size &&
			     !after(tp->mtu_probe.probe_seq_end, tp->snd_una))) {
			tcp_mtup_probe_success(sk);
		}

3401
		tcp_ack_update_rtt(sk, flag, seq_rtt);
3402
		tcp_rearm_rto(sk);
3403

3404 3405 3406
		if (tcp_is_reno(tp)) {
			tcp_remove_reno_sacks(sk, pkts_acked);
		} else {
3407 3408
			int delta;

3409 3410 3411
			/* Non-retransmitted hole got filled? That's reordering */
			if (reord < prior_fackets)
				tcp_update_reordering(sk, tp->fackets_out - reord, 0);
3412

3413 3414 3415
			delta = tcp_is_fack(tp) ? pkts_acked :
						  prior_sacked - tp->sacked_out;
			tp->lost_cnt_hint -= min(tp->lost_cnt_hint, delta);
3416 3417
		}

3418
		tp->fackets_out -= min(pkts_acked, tp->fackets_out);
3419

3420 3421 3422 3423
		if (ca_ops->pkts_acked) {
			s32 rtt_us = -1;

			/* Is the ACK triggering packet unambiguous? */
3424
			if (!(flag & FLAG_RETRANS_DATA_ACKED)) {
3425 3426 3427 3428 3429 3430
				/* High resolution needed and available? */
				if (ca_ops->flags & TCP_CONG_RTT_STAMP &&
				    !ktime_equal(last_ackt,
						 net_invalid_timestamp()))
					rtt_us = ktime_us_delta(ktime_get_real(),
								last_ackt);
3431
				else if (ca_seq_rtt >= 0)
3432
					rtt_us = jiffies_to_usecs(ca_seq_rtt);
3433
			}
3434

3435 3436
			ca_ops->pkts_acked(sk, pkts_acked, rtt_us);
		}
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3437 3438 3439
	}

#if FASTRETRANS_DEBUG > 0
3440 3441 3442
	WARN_ON((int)tp->sacked_out < 0);
	WARN_ON((int)tp->lost_out < 0);
	WARN_ON((int)tp->retrans_out < 0);
3443
	if (!tp->packets_out && tcp_is_sack(tp)) {
3444
		icsk = inet_csk(sk);
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3445 3446
		if (tp->lost_out) {
			printk(KERN_DEBUG "Leak l=%u %d\n",
3447
			       tp->lost_out, icsk->icsk_ca_state);
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3448 3449 3450 3451
			tp->lost_out = 0;
		}
		if (tp->sacked_out) {
			printk(KERN_DEBUG "Leak s=%u %d\n",
3452
			       tp->sacked_out, icsk->icsk_ca_state);
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3453 3454 3455 3456
			tp->sacked_out = 0;
		}
		if (tp->retrans_out) {
			printk(KERN_DEBUG "Leak r=%u %d\n",
3457
			       tp->retrans_out, icsk->icsk_ca_state);
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3458 3459 3460 3461
			tp->retrans_out = 0;
		}
	}
#endif
3462
	return flag;
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3463 3464 3465 3466
}

static void tcp_ack_probe(struct sock *sk)
{
3467 3468
	const struct tcp_sock *tp = tcp_sk(sk);
	struct inet_connection_sock *icsk = inet_csk(sk);
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3469 3470 3471

	/* Was it a usable window open? */

3472
	if (!after(TCP_SKB_CB(tcp_send_head(sk))->end_seq, tcp_wnd_end(tp))) {
3473 3474
		icsk->icsk_backoff = 0;
		inet_csk_clear_xmit_timer(sk, ICSK_TIME_PROBE0);
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3475 3476 3477 3478
		/* Socket must be waked up by subsequent tcp_data_snd_check().
		 * This function is not for random using!
		 */
	} else {
3479
		inet_csk_reset_xmit_timer(sk, ICSK_TIME_PROBE0,
3480 3481
					  min(icsk->icsk_rto << icsk->icsk_backoff, TCP_RTO_MAX),
					  TCP_RTO_MAX);
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3482 3483 3484
	}
}

3485
static inline int tcp_ack_is_dubious(const struct sock *sk, const int flag)
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3486
{
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3487 3488
	return !(flag & FLAG_NOT_DUP) || (flag & FLAG_CA_ALERT) ||
		inet_csk(sk)->icsk_ca_state != TCP_CA_Open;
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3489 3490
}

3491
static inline int tcp_may_raise_cwnd(const struct sock *sk, const int flag)
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3492
{
3493
	const struct tcp_sock *tp = tcp_sk(sk);
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3494
	return (!(flag & FLAG_ECE) || tp->snd_cwnd < tp->snd_ssthresh) &&
3495
		!((1 << inet_csk(sk)->icsk_ca_state) & (TCPF_CA_Recovery | TCPF_CA_CWR));
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3496 3497 3498 3499 3500
}

/* Check that window update is acceptable.
 * The function assumes that snd_una<=ack<=snd_next.
 */
3501 3502 3503
static inline int tcp_may_update_window(const struct tcp_sock *tp,
					const u32 ack, const u32 ack_seq,
					const u32 nwin)
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3504
{
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3505
	return	after(ack, tp->snd_una) ||
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3506
		after(ack_seq, tp->snd_wl1) ||
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3507
		(ack_seq == tp->snd_wl1 && nwin > tp->snd_wnd);
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3508 3509 3510 3511 3512 3513 3514
}

/* Update our send window.
 *
 * Window update algorithm, described in RFC793/RFC1122 (used in linux-2.2
 * and in FreeBSD. NetBSD's one is even worse.) is wrong.
 */
3515
static int tcp_ack_update_window(struct sock *sk, const struct sk_buff *skb, u32 ack,
3516
				 u32 ack_seq)
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3517
{
3518
	struct tcp_sock *tp = tcp_sk(sk);
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3519
	int flag = 0;
3520
	u32 nwin = ntohs(tcp_hdr(skb)->window);
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3521

3522
	if (likely(!tcp_hdr(skb)->syn))
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3523 3524 3525 3526
		nwin <<= tp->rx_opt.snd_wscale;

	if (tcp_may_update_window(tp, ack, ack_seq, nwin)) {
		flag |= FLAG_WIN_UPDATE;
3527
		tcp_update_wl(tp, ack_seq);
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3528 3529 3530 3531 3532 3533 3534

		if (tp->snd_wnd != nwin) {
			tp->snd_wnd = nwin;

			/* Note, it is the only place, where
			 * fast path is recovered for sending TCP.
			 */
3535
			tp->pred_flags = 0;
3536
			tcp_fast_path_check(sk);
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3537 3538 3539

			if (nwin > tp->max_window) {
				tp->max_window = nwin;
3540
				tcp_sync_mss(sk, inet_csk(sk)->icsk_pmtu_cookie);
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3541 3542 3543 3544 3545 3546 3547 3548 3549
			}
		}
	}

	tp->snd_una = ack;

	return flag;
}

3550 3551 3552 3553 3554 3555
/* A very conservative spurious RTO response algorithm: reduce cwnd and
 * continue in congestion avoidance.
 */
static void tcp_conservative_spur_to_response(struct tcp_sock *tp)
{
	tp->snd_cwnd = min(tp->snd_cwnd, tp->snd_ssthresh);
3556
	tp->snd_cwnd_cnt = 0;
3557
	tp->bytes_acked = 0;
3558
	TCP_ECN_queue_cwr(tp);
3559 3560 3561
	tcp_moderate_cwnd(tp);
}

3562 3563 3564 3565 3566 3567 3568 3569
/* A conservative spurious RTO response algorithm: reduce cwnd using
 * rate halving and continue in congestion avoidance.
 */
static void tcp_ratehalving_spur_to_response(struct sock *sk)
{
	tcp_enter_cwr(sk, 0);
}

3570
static void tcp_undo_spur_to_response(struct sock *sk, int flag)
3571
{
3572
	if (flag & FLAG_ECE)
3573 3574
		tcp_ratehalving_spur_to_response(sk);
	else
3575
		tcp_undo_cwr(sk, true);
3576 3577
}

3578 3579
/* F-RTO spurious RTO detection algorithm (RFC4138)
 *
3580 3581 3582
 * F-RTO affects during two new ACKs following RTO (well, almost, see inline
 * comments). State (ACK number) is kept in frto_counter. When ACK advances
 * window (but not to or beyond highest sequence sent before RTO):
3583 3584 3585 3586 3587
 *   On First ACK,  send two new segments out.
 *   On Second ACK, RTO was likely spurious. Do spurious response (response
 *                  algorithm is not part of the F-RTO detection algorithm
 *                  given in RFC4138 but can be selected separately).
 * Otherwise (basically on duplicate ACK), RTO was (likely) caused by a loss
3588 3589 3590
 * and TCP falls back to conventional RTO recovery. F-RTO allows overriding
 * of Nagle, this is done using frto_counter states 2 and 3, when a new data
 * segment of any size sent during F-RTO, state 2 is upgraded to 3.
3591 3592 3593 3594
 *
 * Rationale: if the RTO was spurious, new ACKs should arrive from the
 * original window even after we transmit two new data segments.
 *
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3595 3596 3597 3598
 * SACK version:
 *   on first step, wait until first cumulative ACK arrives, then move to
 *   the second step. In second step, the next ACK decides.
 *
3599 3600 3601 3602 3603 3604 3605 3606 3607
 * F-RTO is implemented (mainly) in four functions:
 *   - tcp_use_frto() is used to determine if TCP is can use F-RTO
 *   - tcp_enter_frto() prepares TCP state on RTO if F-RTO is used, it is
 *     called when tcp_use_frto() showed green light
 *   - tcp_process_frto() handles incoming ACKs during F-RTO algorithm
 *   - tcp_enter_frto_loss() is called if there is not enough evidence
 *     to prove that the RTO is indeed spurious. It transfers the control
 *     from F-RTO to the conventional RTO recovery
 */
3608
static int tcp_process_frto(struct sock *sk, int flag)
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3609 3610
{
	struct tcp_sock *tp = tcp_sk(sk);
3611

3612
	tcp_verify_left_out(tp);
3613

3614
	/* Duplicate the behavior from Loss state (fastretrans_alert) */
3615
	if (flag & FLAG_DATA_ACKED)
3616 3617
		inet_csk(sk)->icsk_retransmits = 0;

3618 3619 3620 3621
	if ((flag & FLAG_NONHEAD_RETRANS_ACKED) ||
	    ((tp->frto_counter >= 2) && (flag & FLAG_RETRANS_DATA_ACKED)))
		tp->undo_marker = 0;

3622
	if (!before(tp->snd_una, tp->frto_highmark)) {
3623
		tcp_enter_frto_loss(sk, (tp->frto_counter == 1 ? 2 : 3), flag);
3624
		return 1;
3625 3626
	}

3627
	if (!tcp_is_sackfrto(tp)) {
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3628 3629 3630 3631
		/* RFC4138 shortcoming in step 2; should also have case c):
		 * ACK isn't duplicate nor advances window, e.g., opposite dir
		 * data, winupdate
		 */
3632
		if (!(flag & FLAG_ANY_PROGRESS) && (flag & FLAG_NOT_DUP))
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3633 3634
			return 1;

3635
		if (!(flag & FLAG_DATA_ACKED)) {
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3636 3637 3638 3639 3640
			tcp_enter_frto_loss(sk, (tp->frto_counter == 1 ? 0 : 3),
					    flag);
			return 1;
		}
	} else {
3641
		if (!(flag & FLAG_DATA_ACKED) && (tp->frto_counter == 1)) {
3642 3643 3644 3645 3646
			if (!tcp_packets_in_flight(tp)) {
				tcp_enter_frto_loss(sk, 2, flag);
				return true;
			}

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3647 3648 3649 3650 3651
			/* Prevent sending of new data. */
			tp->snd_cwnd = min(tp->snd_cwnd,
					   tcp_packets_in_flight(tp));
			return 1;
		}
3652

3653
		if ((tp->frto_counter >= 2) &&
3654 3655 3656
		    (!(flag & FLAG_FORWARD_PROGRESS) ||
		     ((flag & FLAG_DATA_SACKED) &&
		      !(flag & FLAG_ONLY_ORIG_SACKED)))) {
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3657
			/* RFC4138 shortcoming (see comment above) */
3658 3659
			if (!(flag & FLAG_FORWARD_PROGRESS) &&
			    (flag & FLAG_NOT_DUP))
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3660 3661 3662 3663 3664
				return 1;

			tcp_enter_frto_loss(sk, 3, flag);
			return 1;
		}
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3665 3666 3667
	}

	if (tp->frto_counter == 1) {
3668
		/* tcp_may_send_now needs to see updated state */
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3669
		tp->snd_cwnd = tcp_packets_in_flight(tp) + 2;
3670
		tp->frto_counter = 2;
3671 3672 3673 3674

		if (!tcp_may_send_now(sk))
			tcp_enter_frto_loss(sk, 2, flag);

3675
		return 1;
3676
	} else {
3677 3678
		switch (sysctl_tcp_frto_response) {
		case 2:
3679
			tcp_undo_spur_to_response(sk, flag);
3680 3681 3682 3683 3684 3685 3686
			break;
		case 1:
			tcp_conservative_spur_to_response(tp);
			break;
		default:
			tcp_ratehalving_spur_to_response(sk);
			break;
3687
		}
3688
		tp->frto_counter = 0;
3689
		tp->undo_marker = 0;
3690
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPSPURIOUSRTOS);
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3691
	}
3692
	return 0;
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3693 3694
}

3695 3696 3697 3698 3699 3700 3701 3702 3703 3704 3705 3706 3707 3708 3709 3710 3711 3712
/* RFC 5961 7 [ACK Throttling] */
static void tcp_send_challenge_ack(struct sock *sk)
{
	/* unprotected vars, we dont care of overwrites */
	static u32 challenge_timestamp;
	static unsigned int challenge_count;
	u32 now = jiffies / HZ;

	if (now != challenge_timestamp) {
		challenge_timestamp = now;
		challenge_count = 0;
	}
	if (++challenge_count <= sysctl_tcp_challenge_ack_limit) {
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPCHALLENGEACK);
		tcp_send_ack(sk);
	}
}

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3713
/* This routine deals with incoming acks, but not outgoing ones. */
3714
static int tcp_ack(struct sock *sk, const struct sk_buff *skb, int flag)
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3715
{
3716
	struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
	u32 prior_snd_una = tp->snd_una;
	u32 ack_seq = TCP_SKB_CB(skb)->seq;
	u32 ack = TCP_SKB_CB(skb)->ack_seq;
3721
	bool is_dupack = false;
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3722
	u32 prior_in_flight;
3723
	u32 prior_fackets;
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3724
	int prior_packets;
3725
	int prior_sacked = tp->sacked_out;
3726
	int pkts_acked = 0;
3727
	int frto_cwnd = 0;
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Linus Torvalds committed
3728

3729
	/* If the ack is older than previous acks
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3730 3731
	 * then we can probably ignore it.
	 */
3732 3733 3734 3735 3736 3737
	if (before(ack, prior_snd_una)) {
		/* RFC 5961 5.2 [Blind Data Injection Attack].[Mitigation] */
		if (before(ack, prior_snd_una - tp->max_window)) {
			tcp_send_challenge_ack(sk);
			return -1;
		}
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3738
		goto old_ack;
3739
	}
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3740

3741 3742 3743 3744 3745 3746
	/* If the ack includes data we haven't sent yet, discard
	 * this segment (RFC793 Section 3.9).
	 */
	if (after(ack, tp->snd_nxt))
		goto invalid_ack;

3747 3748 3749
	if (after(ack, prior_snd_una))
		flag |= FLAG_SND_UNA_ADVANCED;

3750 3751 3752 3753 3754
	if (sysctl_tcp_abc) {
		if (icsk->icsk_ca_state < TCP_CA_CWR)
			tp->bytes_acked += ack - prior_snd_una;
		else if (icsk->icsk_ca_state == TCP_CA_Loss)
			/* we assume just one segment left network */
3755 3756
			tp->bytes_acked += min(ack - prior_snd_una,
					       tp->mss_cache);
3757
	}
3758

3759
	prior_fackets = tp->fackets_out;
3760
	prior_in_flight = tcp_packets_in_flight(tp);
3761

3762
	if (!(flag & FLAG_SLOWPATH) && after(ack, prior_snd_una)) {
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		/* Window is constant, pure forward advance.
		 * No more checks are required.
		 * Note, we use the fact that SND.UNA>=SND.WL2.
		 */
3767
		tcp_update_wl(tp, ack_seq);
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		tp->snd_una = ack;
		flag |= FLAG_WIN_UPDATE;

3771
		tcp_ca_event(sk, CA_EVENT_FAST_ACK);
3772

3773
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPHPACKS);
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	} else {
		if (ack_seq != TCP_SKB_CB(skb)->end_seq)
			flag |= FLAG_DATA;
		else
3778
			NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPPUREACKS);
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3780
		flag |= tcp_ack_update_window(sk, skb, ack, ack_seq);
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		if (TCP_SKB_CB(skb)->sacked)
			flag |= tcp_sacktag_write_queue(sk, skb, prior_snd_una);

3785
		if (TCP_ECN_rcv_ecn_echo(tp, tcp_hdr(skb)))
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			flag |= FLAG_ECE;

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		tcp_ca_event(sk, CA_EVENT_SLOW_ACK);
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	}

	/* We passed data and got it acked, remove any soft error
	 * log. Something worked...
	 */
	sk->sk_err_soft = 0;
3795
	icsk->icsk_probes_out = 0;
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	tp->rcv_tstamp = tcp_time_stamp;
	prior_packets = tp->packets_out;
	if (!prior_packets)
		goto no_queue;

	/* See if we can take anything off of the retransmit queue. */
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	flag |= tcp_clean_rtx_queue(sk, prior_fackets, prior_snd_una);
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3804
	pkts_acked = prior_packets - tp->packets_out;
3805

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	if (tp->frto_counter)
		frto_cwnd = tcp_process_frto(sk, flag);
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	/* Guarantee sacktag reordering detection against wrap-arounds */
	if (before(tp->frto_highmark, tp->snd_una))
		tp->frto_highmark = 0;
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3812
	if (tcp_ack_is_dubious(sk, flag)) {
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		/* Advance CWND, if state allows this. */
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		if ((flag & FLAG_DATA_ACKED) && !frto_cwnd &&
		    tcp_may_raise_cwnd(sk, flag))
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			tcp_cong_avoid(sk, ack, prior_in_flight);
3817
		is_dupack = !(flag & (FLAG_SND_UNA_ADVANCED | FLAG_NOT_DUP));
3818
		tcp_fastretrans_alert(sk, pkts_acked, prior_sacked,
3819
				      is_dupack, flag);
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	} else {
3821
		if ((flag & FLAG_DATA_ACKED) && !frto_cwnd)
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			tcp_cong_avoid(sk, ack, prior_in_flight);
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	}

3825
	if ((flag & FLAG_FORWARD_PROGRESS) || !(flag & FLAG_NOT_DUP))
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		dst_confirm(__sk_dst_get(sk));
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	return 1;

no_queue:
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	/* If data was DSACKed, see if we can undo a cwnd reduction. */
	if (flag & FLAG_DSACKING_ACK)
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		tcp_fastretrans_alert(sk, pkts_acked, prior_sacked,
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				      is_dupack, flag);
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	/* If this ack opens up a zero window, clear backoff.  It was
	 * being used to time the probes, and is probably far higher than
	 * it needs to be for normal retransmission.
	 */
3839
	if (tcp_send_head(sk))
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		tcp_ack_probe(sk);
	return 1;

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invalid_ack:
	SOCK_DEBUG(sk, "Ack %u after %u:%u\n", ack, tp->snd_una, tp->snd_nxt);
	return -1;

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old_ack:
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	/* If data was SACKed, tag it and see if we should send more data.
	 * If data was DSACKed, see if we can undo a cwnd reduction.
	 */
3851
	if (TCP_SKB_CB(skb)->sacked) {
3852
		flag |= tcp_sacktag_write_queue(sk, skb, prior_snd_una);
3853
		tcp_fastretrans_alert(sk, pkts_acked, prior_sacked,
3854
				      is_dupack, flag);
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	}
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3857
	SOCK_DEBUG(sk, "Ack %u before %u:%u\n", ack, tp->snd_una, tp->snd_nxt);
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	return 0;
}

/* Look for tcp options. Normally only called on SYN and SYNACK packets.
 * But, this can also be called on packets in the established flow when
 * the fast version below fails.
 */
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void tcp_parse_options(const struct sk_buff *skb, struct tcp_options_received *opt_rx,
		       const u8 **hvpp, int estab)
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{
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	const unsigned char *ptr;
	const struct tcphdr *th = tcp_hdr(skb);
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	int length = (th->doff * 4) - sizeof(struct tcphdr);
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	ptr = (const unsigned char *)(th + 1);
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	opt_rx->saw_tstamp = 0;

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	while (length > 0) {
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		int opcode = *ptr++;
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		int opsize;

		switch (opcode) {
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		case TCPOPT_EOL:
			return;
		case TCPOPT_NOP:	/* Ref: RFC 793 section 3.1 */
			length--;
			continue;
		default:
			opsize = *ptr++;
			if (opsize < 2) /* "silly options" */
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				return;
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			if (opsize > length)
				return;	/* don't parse partial options */
			switch (opcode) {
			case TCPOPT_MSS:
				if (opsize == TCPOLEN_MSS && th->syn && !estab) {
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					u16 in_mss = get_unaligned_be16(ptr);
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					if (in_mss) {
						if (opt_rx->user_mss &&
						    opt_rx->user_mss < in_mss)
							in_mss = opt_rx->user_mss;
						opt_rx->mss_clamp = in_mss;
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					}
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				}
				break;
			case TCPOPT_WINDOW:
				if (opsize == TCPOLEN_WINDOW && th->syn &&
3905
				    !estab && sysctl_tcp_window_scaling) {
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					__u8 snd_wscale = *(__u8 *)ptr;
					opt_rx->wscale_ok = 1;
					if (snd_wscale > 14) {
						if (net_ratelimit())
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							pr_info("%s: Illegal window scaling value %d >14 received\n",
								__func__,
								snd_wscale);
3913
						snd_wscale = 14;
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					}
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					opt_rx->snd_wscale = snd_wscale;
				}
				break;
			case TCPOPT_TIMESTAMP:
				if ((opsize == TCPOLEN_TIMESTAMP) &&
				    ((estab && opt_rx->tstamp_ok) ||
3921
				     (!estab && sysctl_tcp_timestamps))) {
3922
					opt_rx->saw_tstamp = 1;
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					opt_rx->rcv_tsval = get_unaligned_be32(ptr);
					opt_rx->rcv_tsecr = get_unaligned_be32(ptr + 4);
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				}
				break;
			case TCPOPT_SACK_PERM:
				if (opsize == TCPOLEN_SACK_PERM && th->syn &&
3929
				    !estab && sysctl_tcp_sack) {
3930
					opt_rx->sack_ok = TCP_SACK_SEEN;
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					tcp_sack_reset(opt_rx);
				}
				break;
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			case TCPOPT_SACK:
				if ((opsize >= (TCPOLEN_SACK_BASE + TCPOLEN_SACK_PERBLOCK)) &&
				   !((opsize - TCPOLEN_SACK_BASE) % TCPOLEN_SACK_PERBLOCK) &&
				   opt_rx->sack_ok) {
					TCP_SKB_CB(skb)->sacked = (ptr - 2) - (unsigned char *)th;
				}
				break;
3942
#ifdef CONFIG_TCP_MD5SIG
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			case TCPOPT_MD5SIG:
				/*
				 * The MD5 Hash has already been
				 * checked (see tcp_v{4,6}_do_rcv()).
				 */
				break;
3949
#endif
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			case TCPOPT_COOKIE:
				/* This option is variable length.
				 */
				switch (opsize) {
				case TCPOLEN_COOKIE_BASE:
					/* not yet implemented */
					break;
				case TCPOLEN_COOKIE_PAIR:
					/* not yet implemented */
					break;
				case TCPOLEN_COOKIE_MIN+0:
				case TCPOLEN_COOKIE_MIN+2:
				case TCPOLEN_COOKIE_MIN+4:
				case TCPOLEN_COOKIE_MIN+6:
				case TCPOLEN_COOKIE_MAX:
					/* 16-bit multiple */
					opt_rx->cookie_plus = opsize;
					*hvpp = ptr;
3968
					break;
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				default:
					/* ignore option */
					break;
3972
				}
3973
				break;
3974
			}
3975

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			ptr += opsize-2;
			length -= opsize;
3978
		}
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	}
}
3981
EXPORT_SYMBOL(tcp_parse_options);
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3982

3983
static int tcp_parse_aligned_timestamp(struct tcp_sock *tp, const struct tcphdr *th)
3984
{
3985
	const __be32 *ptr = (const __be32 *)(th + 1);
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	if (*ptr == htonl((TCPOPT_NOP << 24) | (TCPOPT_NOP << 16)
			  | (TCPOPT_TIMESTAMP << 8) | TCPOLEN_TIMESTAMP)) {
		tp->rx_opt.saw_tstamp = 1;
		++ptr;
		tp->rx_opt.rcv_tsval = ntohl(*ptr);
		++ptr;
		tp->rx_opt.rcv_tsecr = ntohl(*ptr);
		return 1;
	}
	return 0;
}

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/* Fast parse options. This hopes to only see timestamps.
 * If it is wrong it falls back on tcp_parse_options().
 */
4002 4003 4004
static int tcp_fast_parse_options(const struct sk_buff *skb,
				  const struct tcphdr *th,
				  struct tcp_sock *tp, const u8 **hvpp)
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{
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	/* In the spirit of fast parsing, compare doff directly to constant
	 * values.  Because equality is used, short doff can be ignored here.
	 */
	if (th->doff == (sizeof(*th) / 4)) {
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		tp->rx_opt.saw_tstamp = 0;
		return 0;
	} else if (tp->rx_opt.tstamp_ok &&
4013
		   th->doff == ((sizeof(*th) + TCPOLEN_TSTAMP_ALIGNED) / 4)) {
4014
		if (tcp_parse_aligned_timestamp(tp, th))
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			return 1;
	}
4017
	tcp_parse_options(skb, &tp->rx_opt, hvpp, 1);
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	return 1;
}

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#ifdef CONFIG_TCP_MD5SIG
/*
 * Parse MD5 Signature option
 */
4025
const u8 *tcp_parse_md5sig_option(const struct tcphdr *th)
4026
{
4027 4028
	int length = (th->doff << 2) - sizeof(*th);
	const u8 *ptr = (const u8 *)(th + 1);
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	/* If the TCP option is too short, we can short cut */
	if (length < TCPOLEN_MD5SIG)
		return NULL;

	while (length > 0) {
		int opcode = *ptr++;
		int opsize;

		switch(opcode) {
		case TCPOPT_EOL:
			return NULL;
		case TCPOPT_NOP:
			length--;
			continue;
		default:
			opsize = *ptr++;
			if (opsize < 2 || opsize > length)
				return NULL;
			if (opcode == TCPOPT_MD5SIG)
4049
				return opsize == TCPOLEN_MD5SIG ? ptr : NULL;
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		}
		ptr += opsize - 2;
		length -= opsize;
	}
	return NULL;
}
4056
EXPORT_SYMBOL(tcp_parse_md5sig_option);
4057 4058
#endif

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static inline void tcp_store_ts_recent(struct tcp_sock *tp)
{
	tp->rx_opt.ts_recent = tp->rx_opt.rcv_tsval;
4062
	tp->rx_opt.ts_recent_stamp = get_seconds();
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}

static inline void tcp_replace_ts_recent(struct tcp_sock *tp, u32 seq)
{
	if (tp->rx_opt.saw_tstamp && !after(seq, tp->rcv_wup)) {
		/* PAWS bug workaround wrt. ACK frames, the PAWS discard
		 * extra check below makes sure this can only happen
		 * for pure ACK frames.  -DaveM
		 *
		 * Not only, also it occurs for expired timestamps.
		 */

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		if (tcp_paws_check(&tp->rx_opt, 0))
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			tcp_store_ts_recent(tp);
	}
}

/* Sorry, PAWS as specified is broken wrt. pure-ACKs -DaveM
 *
 * It is not fatal. If this ACK does _not_ change critical state (seqs, window)
 * it can pass through stack. So, the following predicate verifies that
 * this segment is not used for anything but congestion avoidance or
 * fast retransmit. Moreover, we even are able to eliminate most of such
 * second order effects, if we apply some small "replay" window (~RTO)
 * to timestamp space.
 *
 * All these measures still do not guarantee that we reject wrapped ACKs
 * on networks with high bandwidth, when sequence space is recycled fastly,
 * but it guarantees that such events will be very rare and do not affect
 * connection seriously. This doesn't look nice, but alas, PAWS is really
 * buggy extension.
 *
 * [ Later note. Even worse! It is buggy for segments _with_ data. RFC
 * states that events when retransmit arrives after original data are rare.
 * It is a blatant lie. VJ forgot about fast retransmit! 8)8) It is
 * the biggest problem on large power networks even with minor reordering.
 * OK, let's give it small replay window. If peer clock is even 1hz, it is safe
 * up to bandwidth of 18Gigabit/sec. 8) ]
 */

4103
static int tcp_disordered_ack(const struct sock *sk, const struct sk_buff *skb)
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{
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	const struct tcp_sock *tp = tcp_sk(sk);
	const struct tcphdr *th = tcp_hdr(skb);
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	u32 seq = TCP_SKB_CB(skb)->seq;
	u32 ack = TCP_SKB_CB(skb)->ack_seq;

	return (/* 1. Pure ACK with correct sequence number. */
		(th->ack && seq == TCP_SKB_CB(skb)->end_seq && seq == tp->rcv_nxt) &&

		/* 2. ... and duplicate ACK. */
		ack == tp->snd_una &&

		/* 3. ... and does not update window. */
		!tcp_may_update_window(tp, ack, seq, ntohs(th->window) << tp->rx_opt.snd_wscale) &&

		/* 4. ... and sits in replay window. */
4120
		(s32)(tp->rx_opt.ts_recent - tp->rx_opt.rcv_tsval) <= (inet_csk(sk)->icsk_rto * 1024) / HZ);
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}

4123 4124
static inline int tcp_paws_discard(const struct sock *sk,
				   const struct sk_buff *skb)
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{
4126
	const struct tcp_sock *tp = tcp_sk(sk);
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	return !tcp_paws_check(&tp->rx_opt, TCP_PAWS_WINDOW) &&
	       !tcp_disordered_ack(sk, skb);
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}

/* Check segment sequence number for validity.
 *
 * Segment controls are considered valid, if the segment
 * fits to the window after truncation to the window. Acceptability
 * of data (and SYN, FIN, of course) is checked separately.
 * See tcp_data_queue(), for example.
 *
 * Also, controls (RST is main one) are accepted using RCV.WUP instead
 * of RCV.NXT. Peer still did not advance his SND.UNA when we
 * delayed ACK, so that hisSND.UNA<=ourRCV.WUP.
 * (borrowed from freebsd)
 */

4145
static inline int tcp_sequence(const struct tcp_sock *tp, u32 seq, u32 end_seq)
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{
	return	!before(end_seq, tp->rcv_wup) &&
		!after(seq, tp->rcv_nxt + tcp_receive_window(tp));
}

/* When we get a reset we do this. */
static void tcp_reset(struct sock *sk)
{
	/* We want the right error as BSD sees it (and indeed as we do). */
	switch (sk->sk_state) {
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	case TCP_SYN_SENT:
		sk->sk_err = ECONNREFUSED;
		break;
	case TCP_CLOSE_WAIT:
		sk->sk_err = EPIPE;
		break;
	case TCP_CLOSE:
		return;
	default:
		sk->sk_err = ECONNRESET;
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	}
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	/* This barrier is coupled with smp_rmb() in tcp_poll() */
	smp_wmb();
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	if (!sock_flag(sk, SOCK_DEAD))
		sk->sk_error_report(sk);

	tcp_done(sk);
}

/*
 * 	Process the FIN bit. This now behaves as it is supposed to work
 *	and the FIN takes effect when it is validly part of sequence
 *	space. Not before when we get holes.
 *
 *	If we are ESTABLISHED, a received fin moves us to CLOSE-WAIT
 *	(and thence onto LAST-ACK and finally, CLOSE, we never enter
 *	TIME-WAIT)
 *
 *	If we are in FINWAIT-1, a received FIN indicates simultaneous
 *	close and we go into CLOSING (and later onto TIME-WAIT)
 *
 *	If we are in FINWAIT-2, a received FIN moves us to TIME-WAIT.
 */
4190
static void tcp_fin(struct sock *sk)
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{
	struct tcp_sock *tp = tcp_sk(sk);

4194
	inet_csk_schedule_ack(sk);
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	sk->sk_shutdown |= RCV_SHUTDOWN;
	sock_set_flag(sk, SOCK_DONE);

	switch (sk->sk_state) {
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	case TCP_SYN_RECV:
	case TCP_ESTABLISHED:
		/* Move to CLOSE_WAIT */
		tcp_set_state(sk, TCP_CLOSE_WAIT);
		inet_csk(sk)->icsk_ack.pingpong = 1;
		break;
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	case TCP_CLOSE_WAIT:
	case TCP_CLOSING:
		/* Received a retransmission of the FIN, do
		 * nothing.
		 */
		break;
	case TCP_LAST_ACK:
		/* RFC793: Remain in the LAST-ACK state. */
		break;
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	case TCP_FIN_WAIT1:
		/* This case occurs when a simultaneous close
		 * happens, we must ack the received FIN and
		 * enter the CLOSING state.
		 */
		tcp_send_ack(sk);
		tcp_set_state(sk, TCP_CLOSING);
		break;
	case TCP_FIN_WAIT2:
		/* Received a FIN -- send ACK and enter TIME_WAIT. */
		tcp_send_ack(sk);
		tcp_time_wait(sk, TCP_TIME_WAIT, 0);
		break;
	default:
		/* Only TCP_LISTEN and TCP_CLOSE are left, in these
		 * cases we should never reach this piece of code.
		 */
4234
		pr_err("%s: Impossible, sk->sk_state=%d\n",
4235
		       __func__, sk->sk_state);
4236
		break;
4237
	}
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	/* It _is_ possible, that we have something out-of-order _after_ FIN.
	 * Probably, we should reset in this case. For now drop them.
	 */
	__skb_queue_purge(&tp->out_of_order_queue);
4243
	if (tcp_is_sack(tp))
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		tcp_sack_reset(&tp->rx_opt);
4245
	sk_mem_reclaim(sk);
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	if (!sock_flag(sk, SOCK_DEAD)) {
		sk->sk_state_change(sk);

		/* Do not send POLL_HUP for half duplex close. */
		if (sk->sk_shutdown == SHUTDOWN_MASK ||
		    sk->sk_state == TCP_CLOSE)
4253
			sk_wake_async(sk, SOCK_WAKE_WAITD, POLL_HUP);
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		else
4255
			sk_wake_async(sk, SOCK_WAKE_WAITD, POLL_IN);
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	}
}

4259 4260
static inline int tcp_sack_extend(struct tcp_sack_block *sp, u32 seq,
				  u32 end_seq)
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{
	if (!after(seq, sp->end_seq) && !after(sp->start_seq, end_seq)) {
		if (before(seq, sp->start_seq))
			sp->start_seq = seq;
		if (after(end_seq, sp->end_seq))
			sp->end_seq = end_seq;
		return 1;
	}
	return 0;
}

4272
static void tcp_dsack_set(struct sock *sk, u32 seq, u32 end_seq)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

4276
	if (tcp_is_sack(tp) && sysctl_tcp_dsack) {
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		int mib_idx;

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		if (before(seq, tp->rcv_nxt))
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			mib_idx = LINUX_MIB_TCPDSACKOLDSENT;
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		else
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			mib_idx = LINUX_MIB_TCPDSACKOFOSENT;

4284
		NET_INC_STATS_BH(sock_net(sk), mib_idx);
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		tp->rx_opt.dsack = 1;
		tp->duplicate_sack[0].start_seq = seq;
		tp->duplicate_sack[0].end_seq = end_seq;
	}
}

4292
static void tcp_dsack_extend(struct sock *sk, u32 seq, u32 end_seq)
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{
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	struct tcp_sock *tp = tcp_sk(sk);

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	if (!tp->rx_opt.dsack)
4297
		tcp_dsack_set(sk, seq, end_seq);
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	else
		tcp_sack_extend(tp->duplicate_sack, seq, end_seq);
}

4302
static void tcp_send_dupack(struct sock *sk, const struct sk_buff *skb)
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{
	struct tcp_sock *tp = tcp_sk(sk);

	if (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
	    before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt)) {
4308
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_DELAYEDACKLOST);
4309
		tcp_enter_quickack_mode(sk);
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4311
		if (tcp_is_sack(tp) && sysctl_tcp_dsack) {
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			u32 end_seq = TCP_SKB_CB(skb)->end_seq;

			if (after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt))
				end_seq = tp->rcv_nxt;
4316
			tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, end_seq);
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		}
	}

	tcp_send_ack(sk);
}

/* These routines update the SACK block as out-of-order packets arrive or
 * in-order packets close up the sequence space.
 */
static void tcp_sack_maybe_coalesce(struct tcp_sock *tp)
{
	int this_sack;
	struct tcp_sack_block *sp = &tp->selective_acks[0];
4330
	struct tcp_sack_block *swalk = sp + 1;
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	/* See if the recent change to the first SACK eats into
	 * or hits the sequence space of other SACK blocks, if so coalesce.
	 */
4335
	for (this_sack = 1; this_sack < tp->rx_opt.num_sacks;) {
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		if (tcp_sack_extend(sp, swalk->start_seq, swalk->end_seq)) {
			int i;

			/* Zap SWALK, by moving every further SACK up by one slot.
			 * Decrease num_sacks.
			 */
			tp->rx_opt.num_sacks--;
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			for (i = this_sack; i < tp->rx_opt.num_sacks; i++)
				sp[i] = sp[i + 1];
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			continue;
		}
		this_sack++, swalk++;
	}
}

static void tcp_sack_new_ofo_skb(struct sock *sk, u32 seq, u32 end_seq)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct tcp_sack_block *sp = &tp->selective_acks[0];
	int cur_sacks = tp->rx_opt.num_sacks;
	int this_sack;

	if (!cur_sacks)
		goto new_sack;

4361
	for (this_sack = 0; this_sack < cur_sacks; this_sack++, sp++) {
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		if (tcp_sack_extend(sp, seq, end_seq)) {
			/* Rotate this_sack to the first one. */
4364
			for (; this_sack > 0; this_sack--, sp--)
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				swap(*sp, *(sp - 1));
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			if (cur_sacks > 1)
				tcp_sack_maybe_coalesce(tp);
			return;
		}
	}

	/* Could not find an adjacent existing SACK, build a new one,
	 * put it at the front, and shift everyone else down.  We
	 * always know there is at least one SACK present already here.
	 *
	 * If the sack array is full, forget about the last one.
	 */
4378
	if (this_sack >= TCP_NUM_SACKS) {
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		this_sack--;
		tp->rx_opt.num_sacks--;
		sp--;
	}
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	for (; this_sack > 0; this_sack--, sp--)
4384
		*sp = *(sp - 1);
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new_sack:
	/* Build the new head SACK, and we're done. */
	sp->start_seq = seq;
	sp->end_seq = end_seq;
	tp->rx_opt.num_sacks++;
}

/* RCV.NXT advances, some SACKs should be eaten. */

static void tcp_sack_remove(struct tcp_sock *tp)
{
	struct tcp_sack_block *sp = &tp->selective_acks[0];
	int num_sacks = tp->rx_opt.num_sacks;
	int this_sack;

	/* Empty ofo queue, hence, all the SACKs are eaten. Clear. */
4402
	if (skb_queue_empty(&tp->out_of_order_queue)) {
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		tp->rx_opt.num_sacks = 0;
		return;
	}

4407
	for (this_sack = 0; this_sack < num_sacks;) {
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		/* Check if the start of the sack is covered by RCV.NXT. */
		if (!before(tp->rcv_nxt, sp->start_seq)) {
			int i;

			/* RCV.NXT must cover all the block! */
4413
			WARN_ON(before(tp->rcv_nxt, sp->end_seq));
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			/* Zap this SACK, by moving forward any other SACKS. */
			for (i=this_sack+1; i < num_sacks; i++)
				tp->selective_acks[i-1] = tp->selective_acks[i];
			num_sacks--;
			continue;
		}
		this_sack++;
		sp++;
	}
4424
	tp->rx_opt.num_sacks = num_sacks;
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}

/* This one checks to see if we can put data from the
 * out_of_order queue into the receive_queue.
 */
static void tcp_ofo_queue(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	__u32 dsack_high = tp->rcv_nxt;
	struct sk_buff *skb;

	while ((skb = skb_peek(&tp->out_of_order_queue)) != NULL) {
		if (after(TCP_SKB_CB(skb)->seq, tp->rcv_nxt))
			break;

		if (before(TCP_SKB_CB(skb)->seq, dsack_high)) {
			__u32 dsack = dsack_high;
			if (before(TCP_SKB_CB(skb)->end_seq, dsack_high))
				dsack_high = TCP_SKB_CB(skb)->end_seq;
4444
			tcp_dsack_extend(sk, TCP_SKB_CB(skb)->seq, dsack);
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		}

		if (!after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt)) {
4448
			SOCK_DEBUG(sk, "ofo packet was already received\n");
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			__skb_unlink(skb, &tp->out_of_order_queue);
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			__kfree_skb(skb);
			continue;
		}
		SOCK_DEBUG(sk, "ofo requeuing : rcv_next %X seq %X - %X\n",
			   tp->rcv_nxt, TCP_SKB_CB(skb)->seq,
			   TCP_SKB_CB(skb)->end_seq);

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		__skb_unlink(skb, &tp->out_of_order_queue);
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		__skb_queue_tail(&sk->sk_receive_queue, skb);
		tp->rcv_nxt = TCP_SKB_CB(skb)->end_seq;
4460
		if (tcp_hdr(skb)->fin)
4461
			tcp_fin(sk);
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	}
}

4465
static int tcp_prune_ofo_queue(struct sock *sk);
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static int tcp_prune_queue(struct sock *sk);

4468 4469 4470 4471 4472 4473 4474 4475 4476
static inline int tcp_try_rmem_schedule(struct sock *sk, unsigned int size)
{
	if (atomic_read(&sk->sk_rmem_alloc) > sk->sk_rcvbuf ||
	    !sk_rmem_schedule(sk, size)) {

		if (tcp_prune_queue(sk) < 0)
			return -1;

		if (!sk_rmem_schedule(sk, size)) {
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			if (!tcp_prune_ofo_queue(sk))
				return -1;

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			if (!sk_rmem_schedule(sk, size))
				return -1;
		}
	}
	return 0;
}

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static void tcp_data_queue_ofo(struct sock *sk, struct sk_buff *skb)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb1;
	u32 seq, end_seq;

	TCP_ECN_check_ce(tp, skb);

	if (tcp_try_rmem_schedule(sk, skb->truesize)) {
		/* TODO: should increment a counter */
		__kfree_skb(skb);
		return;
	}

	/* Disable header prediction. */
	tp->pred_flags = 0;
	inet_csk_schedule_ack(sk);

	SOCK_DEBUG(sk, "out of order segment: rcv_next %X seq %X - %X\n",
		   tp->rcv_nxt, TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq);

	skb1 = skb_peek_tail(&tp->out_of_order_queue);
	if (!skb1) {
		/* Initial out of order segment, build 1 SACK. */
		if (tcp_is_sack(tp)) {
			tp->rx_opt.num_sacks = 1;
			tp->selective_acks[0].start_seq = TCP_SKB_CB(skb)->seq;
			tp->selective_acks[0].end_seq =
						TCP_SKB_CB(skb)->end_seq;
		}
		__skb_queue_head(&tp->out_of_order_queue, skb);
		goto end;
	}

	seq = TCP_SKB_CB(skb)->seq;
	end_seq = TCP_SKB_CB(skb)->end_seq;

	if (seq == TCP_SKB_CB(skb1)->end_seq) {
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		/* Packets in ofo can stay in queue a long time.
		 * Better try to coalesce them right now
		 * to avoid future tcp_collapse_ofo_queue(),
		 * probably the most expensive function in tcp stack.
		 */
		if (skb->len <= skb_tailroom(skb1) && !tcp_hdr(skb)->fin) {
			NET_INC_STATS_BH(sock_net(sk),
					 LINUX_MIB_TCPRCVCOALESCE);
			BUG_ON(skb_copy_bits(skb, 0,
					     skb_put(skb1, skb->len),
					     skb->len));
			TCP_SKB_CB(skb1)->end_seq = end_seq;
			TCP_SKB_CB(skb1)->ack_seq = TCP_SKB_CB(skb)->ack_seq;
			__kfree_skb(skb);
			skb = NULL;
		} else {
			__skb_queue_after(&tp->out_of_order_queue, skb1, skb);
		}
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		if (!tp->rx_opt.num_sacks ||
		    tp->selective_acks[0].end_seq != seq)
			goto add_sack;

		/* Common case: data arrive in order after hole. */
		tp->selective_acks[0].end_seq = end_seq;
		goto end;
	}

	/* Find place to insert this segment. */
	while (1) {
		if (!after(TCP_SKB_CB(skb1)->seq, seq))
			break;
		if (skb_queue_is_first(&tp->out_of_order_queue, skb1)) {
			skb1 = NULL;
			break;
		}
		skb1 = skb_queue_prev(&tp->out_of_order_queue, skb1);
	}

	/* Do skb overlap to previous one? */
	if (skb1 && before(seq, TCP_SKB_CB(skb1)->end_seq)) {
		if (!after(end_seq, TCP_SKB_CB(skb1)->end_seq)) {
			/* All the bits are present. Drop. */
			__kfree_skb(skb);
			skb = NULL;
			tcp_dsack_set(sk, seq, end_seq);
			goto add_sack;
		}
		if (after(seq, TCP_SKB_CB(skb1)->seq)) {
			/* Partial overlap. */
			tcp_dsack_set(sk, seq,
				      TCP_SKB_CB(skb1)->end_seq);
		} else {
			if (skb_queue_is_first(&tp->out_of_order_queue,
					       skb1))
				skb1 = NULL;
			else
				skb1 = skb_queue_prev(
					&tp->out_of_order_queue,
					skb1);
		}
	}
	if (!skb1)
		__skb_queue_head(&tp->out_of_order_queue, skb);
	else
		__skb_queue_after(&tp->out_of_order_queue, skb1, skb);

	/* And clean segments covered by new one as whole. */
	while (!skb_queue_is_last(&tp->out_of_order_queue, skb)) {
		skb1 = skb_queue_next(&tp->out_of_order_queue, skb);

		if (!after(end_seq, TCP_SKB_CB(skb1)->seq))
			break;
		if (before(end_seq, TCP_SKB_CB(skb1)->end_seq)) {
			tcp_dsack_extend(sk, TCP_SKB_CB(skb1)->seq,
					 end_seq);
			break;
		}
		__skb_unlink(skb1, &tp->out_of_order_queue);
		tcp_dsack_extend(sk, TCP_SKB_CB(skb1)->seq,
				 TCP_SKB_CB(skb1)->end_seq);
		__kfree_skb(skb1);
	}

add_sack:
	if (tcp_is_sack(tp))
		tcp_sack_new_ofo_skb(sk, seq, end_seq);
end:
	if (skb)
		skb_set_owner_r(skb, sk);
}


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static void tcp_data_queue(struct sock *sk, struct sk_buff *skb)
{
4620
	const struct tcphdr *th = tcp_hdr(skb);
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	struct tcp_sock *tp = tcp_sk(sk);
	int eaten = -1;

	if (TCP_SKB_CB(skb)->seq == TCP_SKB_CB(skb)->end_seq)
		goto drop;

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	skb_dst_drop(skb);
4628
	__skb_pull(skb, th->doff * 4);
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	TCP_ECN_accept_cwr(tp, skb);

4632
	tp->rx_opt.dsack = 0;
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	/*  Queue data for delivery to the user.
	 *  Packets in sequence go to the receive queue.
	 *  Out of sequence packets to the out_of_order_queue.
	 */
	if (TCP_SKB_CB(skb)->seq == tp->rcv_nxt) {
		if (tcp_receive_window(tp) == 0)
			goto out_of_window;

		/* Ok. In sequence. In window. */
		if (tp->ucopy.task == current &&
		    tp->copied_seq == tp->rcv_nxt && tp->ucopy.len &&
		    sock_owned_by_user(sk) && !tp->urg_data) {
			int chunk = min_t(unsigned int, skb->len,
4647
					  tp->ucopy.len);
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			__set_current_state(TASK_RUNNING);

			local_bh_enable();
			if (!skb_copy_datagram_iovec(skb, 0, tp->ucopy.iov, chunk)) {
				tp->ucopy.len -= chunk;
				tp->copied_seq += chunk;
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				eaten = (chunk == skb->len);
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				tcp_rcv_space_adjust(sk);
			}
			local_bh_disable();
		}

		if (eaten <= 0) {
queue_and_out:
			if (eaten < 0 &&
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			    tcp_try_rmem_schedule(sk, skb->truesize))
				goto drop;

4667
			skb_set_owner_r(skb, sk);
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			__skb_queue_tail(&sk->sk_receive_queue, skb);
		}
		tp->rcv_nxt = TCP_SKB_CB(skb)->end_seq;
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		if (skb->len)
4672
			tcp_event_data_recv(sk, skb);
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		if (th->fin)
4674
			tcp_fin(sk);
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4676
		if (!skb_queue_empty(&tp->out_of_order_queue)) {
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			tcp_ofo_queue(sk);

			/* RFC2581. 4.2. SHOULD send immediate ACK, when
			 * gap in queue is filled.
			 */
4682
			if (skb_queue_empty(&tp->out_of_order_queue))
4683
				inet_csk(sk)->icsk_ack.pingpong = 0;
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		}

		if (tp->rx_opt.num_sacks)
			tcp_sack_remove(tp);

4689
		tcp_fast_path_check(sk);
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		if (eaten > 0)
			__kfree_skb(skb);
		else if (!sock_flag(sk, SOCK_DEAD))
			sk->sk_data_ready(sk, 0);
		return;
	}

	if (!after(TCP_SKB_CB(skb)->end_seq, tp->rcv_nxt)) {
		/* A retransmit, 2nd most common case.  Force an immediate ack. */
4700
		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_DELAYEDACKLOST);
4701
		tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq);
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out_of_window:
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		tcp_enter_quickack_mode(sk);
		inet_csk_schedule_ack(sk);
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drop:
		__kfree_skb(skb);
		return;
	}

	/* Out of window. F.e. zero window probe. */
	if (!before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt + tcp_receive_window(tp)))
		goto out_of_window;

4715
	tcp_enter_quickack_mode(sk);
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	if (before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt)) {
		/* Partial packet, seq < rcv_next < end_seq */
		SOCK_DEBUG(sk, "partial packet: rcv_next %X seq %X - %X\n",
			   tp->rcv_nxt, TCP_SKB_CB(skb)->seq,
			   TCP_SKB_CB(skb)->end_seq);

4723
		tcp_dsack_set(sk, TCP_SKB_CB(skb)->seq, tp->rcv_nxt);
4724

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		/* If window is closed, drop tail of packet. But after
		 * remembering D-SACK for its head made in previous line.
		 */
		if (!tcp_receive_window(tp))
			goto out_of_window;
		goto queue_and_out;
	}

4733
	tcp_data_queue_ofo(sk, skb);
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}

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static struct sk_buff *tcp_collapse_one(struct sock *sk, struct sk_buff *skb,
					struct sk_buff_head *list)
{
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	struct sk_buff *next = NULL;

	if (!skb_queue_is_last(list, skb))
		next = skb_queue_next(list, skb);
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	__skb_unlink(skb, list);
	__kfree_skb(skb);
	NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPRCVCOLLAPSED);

	return next;
}

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/* Collapse contiguous sequence of skbs head..tail with
 * sequence numbers start..end.
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 *
 * If tail is NULL, this means until the end of the list.
 *
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 * Segments with FIN/SYN are not collapsed (only because this
 * simplifies code)
 */
static void
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tcp_collapse(struct sock *sk, struct sk_buff_head *list,
	     struct sk_buff *head, struct sk_buff *tail,
	     u32 start, u32 end)
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{
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	struct sk_buff *skb, *n;
	bool end_of_skbs;
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	/* First, check that queue is collapsible and find
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	 * the point where collapsing can be useful. */
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	skb = head;
restart:
	end_of_skbs = true;
	skb_queue_walk_from_safe(list, skb, n) {
		if (skb == tail)
			break;
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		/* No new bits? It is possible on ofo queue. */
		if (!before(start, TCP_SKB_CB(skb)->end_seq)) {
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			skb = tcp_collapse_one(sk, skb, list);
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			if (!skb)
				break;
			goto restart;
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		}

		/* The first skb to collapse is:
		 * - not SYN/FIN and
		 * - bloated or contains data before "start" or
		 *   overlaps to the next one.
		 */
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		if (!tcp_hdr(skb)->syn && !tcp_hdr(skb)->fin &&
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		    (tcp_win_from_space(skb->truesize) > skb->len ||
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		     before(TCP_SKB_CB(skb)->seq, start))) {
			end_of_skbs = false;
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			break;
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		}

		if (!skb_queue_is_last(list, skb)) {
			struct sk_buff *next = skb_queue_next(list, skb);
			if (next != tail &&
			    TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(next)->seq) {
				end_of_skbs = false;
				break;
			}
		}
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		/* Decided to skip this, advance start seq. */
		start = TCP_SKB_CB(skb)->end_seq;
	}
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	if (end_of_skbs || tcp_hdr(skb)->syn || tcp_hdr(skb)->fin)
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		return;

	while (before(start, end)) {
		struct sk_buff *nskb;
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		unsigned int header = skb_headroom(skb);
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		int copy = SKB_MAX_ORDER(header, 0);

		/* Too big header? This can happen with IPv6. */
		if (copy < 0)
			return;
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		if (end - start < copy)
			copy = end - start;
		nskb = alloc_skb(copy + header, GFP_ATOMIC);
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		if (!nskb)
			return;
4823

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		skb_set_mac_header(nskb, skb_mac_header(skb) - skb->head);
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		skb_set_network_header(nskb, (skb_network_header(skb) -
					      skb->head));
		skb_set_transport_header(nskb, (skb_transport_header(skb) -
						skb->head));
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		skb_reserve(nskb, header);
		memcpy(nskb->head, skb->head, header);
		memcpy(nskb->cb, skb->cb, sizeof(skb->cb));
		TCP_SKB_CB(nskb)->seq = TCP_SKB_CB(nskb)->end_seq = start;
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		__skb_queue_before(list, skb, nskb);
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		skb_set_owner_r(nskb, sk);
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		/* Copy data, releasing collapsed skbs. */
		while (copy > 0) {
			int offset = start - TCP_SKB_CB(skb)->seq;
			int size = TCP_SKB_CB(skb)->end_seq - start;

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			BUG_ON(offset < 0);
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			if (size > 0) {
				size = min(copy, size);
				if (skb_copy_bits(skb, offset, skb_put(nskb, size), size))
					BUG();
				TCP_SKB_CB(nskb)->end_seq += size;
				copy -= size;
				start += size;
			}
			if (!before(start, TCP_SKB_CB(skb)->end_seq)) {
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				skb = tcp_collapse_one(sk, skb, list);
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				if (!skb ||
				    skb == tail ||
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				    tcp_hdr(skb)->syn ||
				    tcp_hdr(skb)->fin)
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					return;
			}
		}
	}
}

/* Collapse ofo queue. Algorithm: select contiguous sequence of skbs
 * and tcp_collapse() them until all the queue is collapsed.
 */
static void tcp_collapse_ofo_queue(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);
	struct sk_buff *skb = skb_peek(&tp->out_of_order_queue);
	struct sk_buff *head;
	u32 start, end;

	if (skb == NULL)
		return;

	start = TCP_SKB_CB(skb)->seq;
	end = TCP_SKB_CB(skb)->end_seq;
	head = skb;

	for (;;) {
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		struct sk_buff *next = NULL;

		if (!skb_queue_is_last(&tp->out_of_order_queue, skb))
			next = skb_queue_next(&tp->out_of_order_queue, skb);
		skb = next;
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		/* Segment is terminated when we see gap or when
		 * we are at the end of all the queue. */
4888
		if (!skb ||
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		    after(TCP_SKB_CB(skb)->seq, end) ||
		    before(TCP_SKB_CB(skb)->end_seq, start)) {
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			tcp_collapse(sk, &tp->out_of_order_queue,
				     head, skb, start, end);
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			head = skb;
4894
			if (!skb)
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				break;
			/* Start new segment */
			start = TCP_SKB_CB(skb)->seq;
			end = TCP_SKB_CB(skb)->end_seq;
		} else {
			if (before(TCP_SKB_CB(skb)->seq, start))
				start = TCP_SKB_CB(skb)->seq;
			if (after(TCP_SKB_CB(skb)->end_seq, end))
				end = TCP_SKB_CB(skb)->end_seq;
		}
	}
}

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/*
 * Purge the out-of-order queue.
4910
 * Return true if queue was pruned.
4911
 */
4912
static int tcp_prune_ofo_queue(struct sock *sk)
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{
	struct tcp_sock *tp = tcp_sk(sk);
4915
	int res = 0;
4916 4917

	if (!skb_queue_empty(&tp->out_of_order_queue)) {
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_OFOPRUNED);
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		__skb_queue_purge(&tp->out_of_order_queue);

		/* Reset SACK state.  A conforming SACK implementation will
		 * do the same at a timeout based retransmit.  When a connection
		 * is in a sad state like this, we care only about integrity
		 * of the connection not performance.
		 */
		if (tp->rx_opt.sack_ok)
			tcp_sack_reset(&tp->rx_opt);
		sk_mem_reclaim(sk);
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		res = 1;
4930
	}
4931
	return res;
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}

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/* Reduce allocated memory if we can, trying to get
 * the socket within its memory limits again.
 *
 * Return less than zero if we should start dropping frames
 * until the socket owning process reads some of the data
 * to stabilize the situation.
 */
static int tcp_prune_queue(struct sock *sk)
{
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	struct tcp_sock *tp = tcp_sk(sk);
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	SOCK_DEBUG(sk, "prune_queue: c=%x\n", tp->copied_seq);

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	NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_PRUNECALLED);
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	if (atomic_read(&sk->sk_rmem_alloc) >= sk->sk_rcvbuf)
4950
		tcp_clamp_window(sk);
4951
	else if (sk_under_memory_pressure(sk))
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		tp->rcv_ssthresh = min(tp->rcv_ssthresh, 4U * tp->advmss);

	tcp_collapse_ofo_queue(sk);
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	if (!skb_queue_empty(&sk->sk_receive_queue))
		tcp_collapse(sk, &sk->sk_receive_queue,
			     skb_peek(&sk->sk_receive_queue),
			     NULL,
			     tp->copied_seq, tp->rcv_nxt);
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	sk_mem_reclaim(sk);
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	if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf)
		return 0;

	/* Collapsing did not help, destructive actions follow.
	 * This must not ever occur. */

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	tcp_prune_ofo_queue(sk);
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	if (atomic_read(&sk->sk_rmem_alloc) <= sk->sk_rcvbuf)
		return 0;

	/* If we are really being abused, tell the caller to silently
	 * drop receive data on the floor.  It will get retransmitted
	 * and hopefully then we'll have sufficient space.
	 */
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	NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_RCVPRUNED);
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	/* Massive buffer overcommit. */
	tp->pred_flags = 0;
	return -1;
}

/* RFC2861, slow part. Adjust cwnd, after it was not full during one rto.
 * As additional protections, we do not touch cwnd in retransmission phases,
 * and if application hit its sndbuf limit recently.
 */
void tcp_cwnd_application_limited(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);

4992
	if (inet_csk(sk)->icsk_ca_state == TCP_CA_Open &&
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	    sk->sk_socket && !test_bit(SOCK_NOSPACE, &sk->sk_socket->flags)) {
		/* Limited by application or receiver window. */
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		u32 init_win = tcp_init_cwnd(tp, __sk_dst_get(sk));
		u32 win_used = max(tp->snd_cwnd_used, init_win);
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		if (win_used < tp->snd_cwnd) {
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			tp->snd_ssthresh = tcp_current_ssthresh(sk);
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			tp->snd_cwnd = (tp->snd_cwnd + win_used) >> 1;
		}
		tp->snd_cwnd_used = 0;
	}
	tp->snd_cwnd_stamp = tcp_time_stamp;
}

5006
static int tcp_should_expand_sndbuf(const struct sock *sk)
5007
{
5008
	const struct tcp_sock *tp = tcp_sk(sk);
5009

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	/* If the user specified a specific send buffer setting, do
	 * not modify it.
	 */
	if (sk->sk_userlocks & SOCK_SNDBUF_LOCK)
		return 0;

	/* If we are under global TCP memory pressure, do not expand.  */
5017
	if (sk_under_memory_pressure(sk))
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		return 0;

	/* If we are under soft global TCP memory pressure, do not expand.  */
5021
	if (sk_memory_allocated(sk) >= sk_prot_mem_limits(sk, 0))
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		return 0;

	/* If we filled the congestion window, do not expand.  */
	if (tp->packets_out >= tp->snd_cwnd)
		return 0;

	return 1;
}
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/* When incoming ACK allowed to free some skb from write_queue,
 * we remember this event in flag SOCK_QUEUE_SHRUNK and wake up socket
 * on the exit from tcp input handler.
 *
 * PROBLEM: sndbuf expansion does not work well with largesend.
 */
static void tcp_new_space(struct sock *sk)
{
	struct tcp_sock *tp = tcp_sk(sk);

5041
	if (tcp_should_expand_sndbuf(sk)) {
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		int sndmem = SKB_TRUESIZE(max_t(u32,
						tp->rx_opt.mss_clamp,
						tp->mss_cache) +
					  MAX_TCP_HEADER);
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		int demanded = max_t(unsigned int, tp->snd_cwnd,
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				     tp->reordering + 1);
		sndmem *= 2 * demanded;
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		if (sndmem > sk->sk_sndbuf)
			sk->sk_sndbuf = min(sndmem, sysctl_tcp_wmem[2]);
		tp->snd_cwnd_stamp = tcp_time_stamp;
	}

	sk->sk_write_space(sk);
}

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static void tcp_check_space(struct sock *sk)
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{
	if (sock_flag(sk, SOCK_QUEUE_SHRUNK)) {
		sock_reset_flag(sk, SOCK_QUEUE_SHRUNK);
		if (sk->sk_socket &&
		    test_bit(SOCK_NOSPACE, &sk->sk_socket->flags))
			tcp_new_space(sk);
	}
}

5067
static inline void tcp_data_snd_check(struct sock *sk)
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{
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	tcp_push_pending_frames(sk);
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	tcp_check_space(sk);
}

/*
 * Check if sending an ack is needed.
 */
static void __tcp_ack_snd_check(struct sock *sk, int ofo_possible)
{
	struct tcp_sock *tp = tcp_sk(sk);

	    /* More than one full frame received... */
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	if (((tp->rcv_nxt - tp->rcv_wup) > inet_csk(sk)->icsk_ack.rcv_mss &&
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	     /* ... and right edge of window advances far enough.
	      * (tcp_recvmsg() will send ACK otherwise). Or...
	      */
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	     __tcp_select_window(sk) >= tp->rcv_wnd) ||
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	    /* We ACK each frame or... */
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	    tcp_in_quickack_mode(sk) ||
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	    /* We have out of order data. */
5089
	    (ofo_possible && skb_peek(&tp->out_of_order_queue))) {
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		/* Then ack it now */
		tcp_send_ack(sk);
	} else {
		/* Else, send delayed ack. */
		tcp_send_delayed_ack(sk);
	}
}

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static inline void tcp_ack_snd_check(struct sock *sk)
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{
5100
	if (!inet_csk_ack_scheduled(sk)) {
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		/* We sent a data segment already. */
		return;
	}
	__tcp_ack_snd_check(sk, 1);
}

/*
 *	This routine is only called when we have urgent data
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 *	signaled. Its the 'slow' part of tcp_urg. It could be
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 *	moved inline now as tcp_urg is only called from one
 *	place. We handle URGent data wrong. We have to - as
 *	BSD still doesn't use the correction from RFC961.
 *	For 1003.1g we should support a new option TCP_STDURG to permit
 *	either form (or just set the sysctl tcp_stdurg).
 */
5116

5117
static void tcp_check_urg(struct sock *sk, const struct tcphdr *th)
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{
	struct tcp_sock *tp = tcp_sk(sk);
	u32 ptr = ntohs(th->urg_ptr);

	if (ptr && !sysctl_tcp_stdurg)
		ptr--;
	ptr += ntohl(th->seq);

	/* Ignore urgent data that we've already seen and read. */
	if (after(tp->copied_seq, ptr))
		return;

	/* Do not replay urg ptr.
	 *
	 * NOTE: interesting situation not covered by specs.
	 * Misbehaving sender may send urg ptr, pointing to segment,
	 * which we already have in ofo queue. We are not able to fetch
	 * such data and will stay in TCP_URG_NOTYET until will be eaten
	 * by recvmsg(). Seems, we are not obliged to handle such wicked
	 * situations. But it is worth to think about possibility of some
	 * DoSes using some hypothetical application level deadlock.
	 */
	if (before(ptr, tp->rcv_nxt))
		return;

	/* Do we already have a newer (or duplicate) urgent pointer? */
	if (tp->urg_data && !after(ptr, tp->urg_seq))
		return;

	/* Tell the world about our new urgent pointer. */
	sk_send_sigurg(sk);

	/* We may be adding urgent data when the last byte read was
	 * urgent. To do this requires some care. We cannot just ignore
	 * tp->copied_seq since we would read the last urgent byte again
	 * as data, nor can we alter copied_seq until this data arrives
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	 * or we break the semantics of SIOCATMARK (and thus sockatmark())
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	 *
	 * NOTE. Double Dutch. Rendering to plain English: author of comment
	 * above did something sort of 	send("A", MSG_OOB); send("B", MSG_OOB);
	 * and expect that both A and B disappear from stream. This is _wrong_.
	 * Though this happens in BSD with high probability, this is occasional.
	 * Any application relying on this is buggy. Note also, that fix "works"
	 * only in this artificial test. Insert some normal data between A and B and we will
	 * decline of BSD again. Verdict: it is better to remove to trap
	 * buggy users.
	 */
	if (tp->urg_seq == tp->copied_seq && tp->urg_data &&
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	    !sock_flag(sk, SOCK_URGINLINE) && tp->copied_seq != tp->rcv_nxt) {
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		struct sk_buff *skb = skb_peek(&sk->sk_receive_queue);
		tp->copied_seq++;
		if (skb && !before(tp->copied_seq, TCP_SKB_CB(skb)->end_seq)) {
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			__skb_unlink(skb, &sk->sk_receive_queue);
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			__kfree_skb(skb);
		}
	}

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	tp->urg_data = TCP_URG_NOTYET;
	tp->urg_seq = ptr;
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	/* Disable header prediction. */
	tp->pred_flags = 0;
}

/* This is the 'fast' part of urgent handling. */
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static void tcp_urg(struct sock *sk, struct sk_buff *skb, const struct tcphdr *th)
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{
	struct tcp_sock *tp = tcp_sk(sk);

	/* Check if we get a new urgent pointer - normally not. */
	if (th->urg)
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		tcp_check_urg(sk, th);
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	/* Do we wait for any urgent data? - normally not... */
	if (tp->urg_data == TCP_URG_NOTYET) {
		u32 ptr = tp->urg_seq - ntohl(th->seq) + (th->doff * 4) -
			  th->syn;

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		/* Is the urgent pointer pointing into this packet? */
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		if (ptr < skb->len) {
			u8 tmp;
			if (skb_copy_bits(skb, ptr, &tmp, 1))
				BUG();
			tp->urg_data = TCP_URG_VALID | tmp;
			if (!sock_flag(sk, SOCK_DEAD))
				sk->sk_data_ready(sk, 0);
		}
	}
}

static int tcp_copy_to_iovec(struct sock *sk, struct sk_buff *skb, int hlen)
{
	struct tcp_sock *tp = tcp_sk(sk);
	int chunk = skb->len - hlen;
	int err;

	local_bh_enable();
5215
	if (skb_csum_unnecessary(skb))
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		err = skb_copy_datagram_iovec(skb, hlen, tp->ucopy.iov, chunk);
	else
		err = skb_copy_and_csum_datagram_iovec(skb, hlen,
						       tp->ucopy.iov);

	if (!err) {
		tp->ucopy.len -= chunk;
		tp->copied_seq += chunk;
		tcp_rcv_space_adjust(sk);
	}

	local_bh_disable();
	return err;
}

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static __sum16 __tcp_checksum_complete_user(struct sock *sk,
					    struct sk_buff *skb)
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5233
{
5234
	__sum16 result;
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	if (sock_owned_by_user(sk)) {
		local_bh_enable();
		result = __tcp_checksum_complete(skb);
		local_bh_disable();
	} else {
		result = __tcp_checksum_complete(skb);
	}
	return result;
}

5246 5247
static inline int tcp_checksum_complete_user(struct sock *sk,
					     struct sk_buff *skb)
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{
5249
	return !skb_csum_unnecessary(skb) &&
5250
	       __tcp_checksum_complete_user(sk, skb);
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}

5253
#ifdef CONFIG_NET_DMA
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static int tcp_dma_try_early_copy(struct sock *sk, struct sk_buff *skb,
				  int hlen)
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{
	struct tcp_sock *tp = tcp_sk(sk);
	int chunk = skb->len - hlen;
	int dma_cookie;
	int copied_early = 0;

	if (tp->ucopy.wakeup)
5263
		return 0;
5264 5265

	if (!tp->ucopy.dma_chan && tp->ucopy.pinned_list)
5266
		tp->ucopy.dma_chan = net_dma_find_channel();
5267

5268
	if (tp->ucopy.dma_chan && skb_csum_unnecessary(skb)) {
5269 5270

		dma_cookie = dma_skb_copy_datagram_iovec(tp->ucopy.dma_chan,
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							 skb, hlen,
							 tp->ucopy.iov, chunk,
							 tp->ucopy.pinned_list);
5274 5275 5276 5277 5278 5279 5280 5281 5282 5283 5284 5285

		if (dma_cookie < 0)
			goto out;

		tp->ucopy.dma_cookie = dma_cookie;
		copied_early = 1;

		tp->ucopy.len -= chunk;
		tp->copied_seq += chunk;
		tcp_rcv_space_adjust(sk);

		if ((tp->ucopy.len == 0) ||
5286
		    (tcp_flag_word(tcp_hdr(skb)) & TCP_FLAG_PSH) ||
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		    (atomic_read(&sk->sk_rmem_alloc) > (sk->sk_rcvbuf >> 1))) {
			tp->ucopy.wakeup = 1;
			sk->sk_data_ready(sk, 0);
		}
	} else if (chunk > 0) {
		tp->ucopy.wakeup = 1;
		sk->sk_data_ready(sk, 0);
	}
out:
	return copied_early;
}
#endif /* CONFIG_NET_DMA */

5300 5301 5302
/* Does PAWS and seqno based validation of an incoming segment, flags will
 * play significant role here.
 */
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static bool tcp_validate_incoming(struct sock *sk, struct sk_buff *skb,
				  const struct tcphdr *th, int syn_inerr)
5305
{
5306
	const u8 *hash_location;
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	struct tcp_sock *tp = tcp_sk(sk);

	/* RFC1323: H1. Apply PAWS check first. */
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	if (tcp_fast_parse_options(skb, th, tp, &hash_location) &&
	    tp->rx_opt.saw_tstamp &&
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	    tcp_paws_discard(sk, skb)) {
		if (!th->rst) {
			NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_PAWSESTABREJECTED);
			tcp_send_dupack(sk, skb);
			goto discard;
		}
		/* Reset is accepted even if it did not pass PAWS. */
	}

	/* Step 1: check sequence number */
	if (!tcp_sequence(tp, TCP_SKB_CB(skb)->seq, TCP_SKB_CB(skb)->end_seq)) {
		/* RFC793, page 37: "In all states except SYN-SENT, all reset
		 * (RST) segments are validated by checking their SEQ-fields."
		 * And page 69: "If an incoming segment is not acceptable,
		 * an acknowledgment should be sent in reply (unless the RST
		 * bit is set, if so drop the segment and return)".
		 */
5329 5330 5331
		if (!th->rst) {
			if (th->syn)
				goto syn_challenge;
5332
			tcp_send_dupack(sk, skb);
5333
		}
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		goto discard;
	}

	/* Step 2: check RST bit */
	if (th->rst) {
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		/* RFC 5961 3.2 :
		 * If sequence number exactly matches RCV.NXT, then
		 *     RESET the connection
		 * else
		 *     Send a challenge ACK
		 */
		if (TCP_SKB_CB(skb)->seq == tp->rcv_nxt)
			tcp_reset(sk);
		else
			tcp_send_challenge_ack(sk);
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		goto discard;
	}

	/* step 3: check security and precedence [ignored] */

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	/* step 4: Check for a SYN
	 * RFC 5691 4.2 : Send a challenge ack
	 */
	if (th->syn) {
5358
syn_challenge:
5359 5360
		if (syn_inerr)
			TCP_INC_STATS_BH(sock_net(sk), TCP_MIB_INERRS);
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		NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPSYNCHALLENGE);
		tcp_send_challenge_ack(sk);
		goto discard;
5364 5365
	}

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5366
	return true;
5367 5368 5369

discard:
	__kfree_skb(skb);
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5370
	return false;
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}

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5373
/*
5374
 *	TCP receive function for the ESTABLISHED state.
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5375
 *
5376
 *	It is split into a fast path and a slow path. The fast path is
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 * 	disabled when:
 *	- A zero window was announced from us - zero window probing
5379
 *        is only handled properly in the slow path.
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 *	- Out of order segments arrived.
 *	- Urgent data is expected.
 *	- There is no buffer space left
 *	- Unexpected TCP flags/window values/header lengths are received
5384
 *	  (detected by checking the TCP header against pred_flags)
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 *	- Data is sent in both directions. Fast path only supports pure senders
 *	  or pure receivers (this means either the sequence number or the ack
 *	  value must stay constant)
 *	- Unexpected TCP option.
 *
5390
 *	When these conditions are not satisfied it drops into a standard
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5391 5392
 *	receive procedure patterned after RFC793 to handle all cases.
 *	The first three cases are guaranteed by proper pred_flags setting,
5393
 *	the rest is checked inline. Fast processing is turned on in
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 *	tcp_data_queue when everything is OK.
 */
int tcp_rcv_established(struct sock *sk, struct sk_buff *skb,
5397
			const struct tcphdr *th, unsigned int len)
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5398 5399 5400 5401 5402
{
	struct tcp_sock *tp = tcp_sk(sk);

	/*
	 *	Header prediction.
5403
	 *	The code loosely follows the one in the famous
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5404
	 *	"30 instruction TCP receive" Van Jacobson mail.
5405 5406
	 *
	 *	Van's trick is to deposit buffers into socket queue
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	 *	on a device interrupt, to call tcp_recv function
	 *	on the receive process context and checksum and copy
	 *	the buffer to user space. smart...
	 *
5411
	 *	Our current scheme is not silly either but we take the
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	 *	extra cost of the net_bh soft interrupt processing...
	 *	We do checksum and copy also but from device to kernel.
	 */

	tp->rx_opt.saw_tstamp = 0;

	/*	pred_flags is 0xS?10 << 16 + snd_wnd
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5419
	 *	if header_prediction is to be made
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5420 5421
	 *	'S' will always be tp->tcp_header_len >> 2
	 *	'?' will be 0 for the fast path, otherwise pred_flags is 0 to
5422
	 *  turn it off	(when there are holes in the receive
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5423 5424 5425 5426 5427
	 *	 space for instance)
	 *	PSH flag is ignored.
	 */

	if ((tcp_flag_word(th) & TCP_HP_BITS) == tp->pred_flags &&
5428 5429
	    TCP_SKB_CB(skb)->seq == tp->rcv_nxt &&
	    !after(TCP_SKB_CB(skb)->ack_seq, tp->snd_nxt)) {
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		int tcp_header_len = tp->tcp_header_len;

		/* Timestamp header prediction: tcp_header_len
		 * is automatically equal to th->doff*4 due to pred_flags
		 * match.
		 */

		/* Check timestamp */
		if (tcp_header_len == sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED) {
			/* No? Slow path! */
5440
			if (!tcp_parse_aligned_timestamp(tp, th))
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				goto slow_path;

			/* If PAWS failed, check it more carefully in slow path */
			if ((s32)(tp->rx_opt.rcv_tsval - tp->rx_opt.ts_recent) < 0)
				goto slow_path;

			/* DO NOT update ts_recent here, if checksum fails
			 * and timestamp was corrupted part, it will result
			 * in a hung connection since we will drop all
			 * future packets due to the PAWS test.
			 */
		}

		if (len <= tcp_header_len) {
			/* Bulk data transfer: sender */
			if (len == tcp_header_len) {
				/* Predicted packet is in window by definition.
				 * seq == rcv_nxt and rcv_wup <= rcv_nxt.
				 * Hence, check seq<=rcv_wup reduces to:
				 */
				if (tcp_header_len ==
				    (sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED) &&
				    tp->rcv_nxt == tp->rcv_wup)
					tcp_store_ts_recent(tp);

				/* We know that such packets are checksummed
				 * on entry.
				 */
				tcp_ack(sk, skb, 0);
5470
				__kfree_skb(skb);
5471
				tcp_data_snd_check(sk);
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				return 0;
			} else { /* Header too small */
5474
				TCP_INC_STATS_BH(sock_net(sk), TCP_MIB_INERRS);
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				goto discard;
			}
		} else {
			int eaten = 0;
5479
			int copied_early = 0;
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5480

5481 5482 5483
			if (tp->copied_seq == tp->rcv_nxt &&
			    len - tcp_header_len <= tp->ucopy.len) {
#ifdef CONFIG_NET_DMA
5484 5485 5486
				if (tp->ucopy.task == current &&
				    sock_owned_by_user(sk) &&
				    tcp_dma_try_early_copy(sk, skb, tcp_header_len)) {
5487 5488 5489 5490
					copied_early = 1;
					eaten = 1;
				}
#endif
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				if (tp->ucopy.task == current &&
				    sock_owned_by_user(sk) && !copied_early) {
5493
					__set_current_state(TASK_RUNNING);
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5495 5496 5497 5498
					if (!tcp_copy_to_iovec(sk, skb, tcp_header_len))
						eaten = 1;
				}
				if (eaten) {
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					/* Predicted packet is in window by definition.
					 * seq == rcv_nxt and rcv_wup <= rcv_nxt.
					 * Hence, check seq<=rcv_wup reduces to:
					 */
					if (tcp_header_len ==
					    (sizeof(struct tcphdr) +
					     TCPOLEN_TSTAMP_ALIGNED) &&
					    tp->rcv_nxt == tp->rcv_wup)
						tcp_store_ts_recent(tp);

5509
					tcp_rcv_rtt_measure_ts(sk, skb);
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					__skb_pull(skb, tcp_header_len);
					tp->rcv_nxt = TCP_SKB_CB(skb)->end_seq;
5513
					NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPHPHITSTOUSER);
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				}
5515 5516
				if (copied_early)
					tcp_cleanup_rbuf(sk, skb->len);
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			}
			if (!eaten) {
				if (tcp_checksum_complete_user(sk, skb))
					goto csum_error;

				/* Predicted packet is in window by definition.
				 * seq == rcv_nxt and rcv_wup <= rcv_nxt.
				 * Hence, check seq<=rcv_wup reduces to:
				 */
				if (tcp_header_len ==
				    (sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED) &&
				    tp->rcv_nxt == tp->rcv_wup)
					tcp_store_ts_recent(tp);

5531
				tcp_rcv_rtt_measure_ts(sk, skb);
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				if ((int)skb->truesize > sk->sk_forward_alloc)
					goto step5;

5536
				NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPHPHITS);
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				/* Bulk data transfer: receiver */
5539
				__skb_pull(skb, tcp_header_len);
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5540
				__skb_queue_tail(&sk->sk_receive_queue, skb);
5541
				skb_set_owner_r(skb, sk);
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				tp->rcv_nxt = TCP_SKB_CB(skb)->end_seq;
			}

5545
			tcp_event_data_recv(sk, skb);
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			if (TCP_SKB_CB(skb)->ack_seq != tp->snd_una) {
				/* Well, only one small jumplet in fast path... */
				tcp_ack(sk, skb, FLAG_DATA);
5550
				tcp_data_snd_check(sk);
5551
				if (!inet_csk_ack_scheduled(sk))
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					goto no_ack;
			}

5555 5556
			if (!copied_early || tp->rcv_nxt != tp->rcv_wup)
				__tcp_ack_snd_check(sk, 0);
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no_ack:
5558 5559 5560 5561 5562
#ifdef CONFIG_NET_DMA
			if (copied_early)
				__skb_queue_tail(&sk->sk_async_wait_queue, skb);
			else
#endif
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			if (eaten)
				__kfree_skb(skb);
			else
				sk->sk_data_ready(sk, 0);
			return 0;
		}
	}

slow_path:
5572
	if (len < (th->doff << 2) || tcp_checksum_complete_user(sk, skb))
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		goto csum_error;

	/*
	 *	Standard slow path.
	 */

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	if (!tcp_validate_incoming(sk, skb, th, 1))
		return 0;
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step5:
5583 5584
	if (th->ack && tcp_ack(sk, skb, FLAG_SLOWPATH) < 0)
		goto discard;
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5586 5587 5588 5589 5590
	/* ts_recent update must be made after we are sure that the packet
	 * is in window.
	 */
	tcp_replace_ts_recent(tp, TCP_SKB_CB(skb)->seq);

5591
	tcp_rcv_rtt_measure_ts(sk, skb);
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	/* Process urgent data. */
	tcp_urg(sk, skb, th);

	/* step 7: process the segment text */
	tcp_data_queue(sk, skb);

5599
	tcp_data_snd_check(sk);
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	tcp_ack_snd_check(sk);
	return 0;

csum_error:
5604
	TCP_INC_STATS_BH(sock_net(sk), TCP_MIB_INERRS);
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discard:
	__kfree_skb(skb);
	return 0;
}
5610
EXPORT_SYMBOL(tcp_rcv_established);
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static int tcp_rcv_synsent_state_process(struct sock *sk, struct sk_buff *skb,
5613
					 const struct tcphdr *th, unsigned int len)
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{
5615
	const u8 *hash_location;
5616
	struct inet_connection_sock *icsk = inet_csk(sk);
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	struct tcp_sock *tp = tcp_sk(sk);
	struct tcp_cookie_values *cvp = tp->cookie_values;
	int saved_clamp = tp->rx_opt.mss_clamp;
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5621
	tcp_parse_options(skb, &tp->rx_opt, &hash_location, 0);
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	if (th->ack) {
		/* rfc793:
		 * "If the state is SYN-SENT then
		 *    first check the ACK bit
		 *      If the ACK bit is set
		 *	  If SEG.ACK =< ISS, or SEG.ACK > SND.NXT, send
		 *        a reset (unless the RST bit is set, if so drop
		 *        the segment and return)"
		 *
		 *  We do not send data with SYN, so that RFC-correct
		 *  test reduces to:
		 */
		if (TCP_SKB_CB(skb)->ack_seq != tp->snd_nxt)
			goto reset_and_undo;

		if (tp->rx_opt.saw_tstamp && tp->rx_opt.rcv_tsecr &&
		    !between(tp->rx_opt.rcv_tsecr, tp->retrans_stamp,
			     tcp_time_stamp)) {
5641
			NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_PAWSACTIVEREJECTED);
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			goto reset_and_undo;
		}

		/* Now ACK is acceptable.
		 *
		 * "If the RST bit is set
		 *    If the ACK was acceptable then signal the user "error:
		 *    connection reset", drop the segment, enter CLOSED state,
		 *    delete TCB, and return."
		 */

		if (th->rst) {
			tcp_reset(sk);
			goto discard;
		}

		/* rfc793:
		 *   "fifth, if neither of the SYN or RST bits is set then
		 *    drop the segment and return."
		 *
		 *    See note below!
		 *                                        --ANK(990513)
		 */
		if (!th->syn)
			goto discard_and_undo;

		/* rfc793:
		 *   "If the SYN bit is on ...
		 *    are acceptable then ...
		 *    (our SYN has been ACKed), change the connection
		 *    state to ESTABLISHED..."
		 */

		TCP_ECN_rcv_synack(tp, th);

		tp->snd_wl1 = TCP_SKB_CB(skb)->seq;
		tcp_ack(sk, skb, FLAG_SLOWPATH);

		/* Ok.. it's good. Set up sequence numbers and
		 * move to established.
		 */
		tp->rcv_nxt = TCP_SKB_CB(skb)->seq + 1;
		tp->rcv_wup = TCP_SKB_CB(skb)->seq + 1;

		/* RFC1323: The window in SYN & SYN/ACK segments is
		 * never scaled.
		 */
		tp->snd_wnd = ntohs(th->window);
5690
		tcp_init_wl(tp, TCP_SKB_CB(skb)->seq);
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		if (!tp->rx_opt.wscale_ok) {
			tp->rx_opt.snd_wscale = tp->rx_opt.rcv_wscale = 0;
			tp->window_clamp = min(tp->window_clamp, 65535U);
		}

		if (tp->rx_opt.saw_tstamp) {
			tp->rx_opt.tstamp_ok	   = 1;
			tp->tcp_header_len =
				sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED;
			tp->advmss	    -= TCPOLEN_TSTAMP_ALIGNED;
			tcp_store_ts_recent(tp);
		} else {
			tp->tcp_header_len = sizeof(struct tcphdr);
		}

5707 5708
		if (tcp_is_sack(tp) && sysctl_tcp_fack)
			tcp_enable_fack(tp);
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5709

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		tcp_mtup_init(sk);
5711
		tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
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		tcp_initialize_rcv_mss(sk);

		/* Remember, tcp_poll() does not lock socket!
		 * Change state from SYN-SENT only after copied_seq
		 * is initialized. */
		tp->copied_seq = tp->rcv_nxt;
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		if (cvp != NULL &&
		    cvp->cookie_pair_size > 0 &&
		    tp->rx_opt.cookie_plus > 0) {
			int cookie_size = tp->rx_opt.cookie_plus
					- TCPOLEN_COOKIE_BASE;
			int cookie_pair_size = cookie_size
					     + cvp->cookie_desired;

			/* A cookie extension option was sent and returned.
			 * Note that each incoming SYNACK replaces the
			 * Responder cookie.  The initial exchange is most
			 * fragile, as protection against spoofing relies
			 * entirely upon the sequence and timestamp (above).
			 * This replacement strategy allows the correct pair to
			 * pass through, while any others will be filtered via
			 * Responder verification later.
			 */
			if (sizeof(cvp->cookie_pair) >= cookie_pair_size) {
				memcpy(&cvp->cookie_pair[cvp->cookie_desired],
				       hash_location, cookie_size);
				cvp->cookie_pair_size = cookie_pair_size;
			}
		}

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5743
		smp_mb();
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		tcp_set_state(sk, TCP_ESTABLISHED);

5746 5747
		security_inet_conn_established(sk, skb);

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		/* Make sure socket is routed, for correct metrics.  */
5749
		icsk->icsk_af_ops->rebuild_header(sk);
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		tcp_init_metrics(sk);

5753
		tcp_init_congestion_control(sk);
5754

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		/* Prevent spurious tcp_cwnd_restart() on first data
		 * packet.
		 */
		tp->lsndtime = tcp_time_stamp;

		tcp_init_buffer_space(sk);

		if (sock_flag(sk, SOCK_KEEPOPEN))
5763
			inet_csk_reset_keepalive_timer(sk, keepalive_time_when(tp));
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		if (!tp->rx_opt.snd_wscale)
			__tcp_fast_path_on(tp, tp->snd_wnd);
		else
			tp->pred_flags = 0;

		if (!sock_flag(sk, SOCK_DEAD)) {
			sk->sk_state_change(sk);
5772
			sk_wake_async(sk, SOCK_WAKE_IO, POLL_OUT);
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		}

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		if (sk->sk_write_pending ||
		    icsk->icsk_accept_queue.rskq_defer_accept ||
		    icsk->icsk_ack.pingpong) {
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			/* Save one ACK. Data will be ready after
			 * several ticks, if write_pending is set.
			 *
			 * It may be deleted, but with this feature tcpdumps
			 * look so _wonderfully_ clever, that I was not able
			 * to stand against the temptation 8)     --ANK
			 */
5785
			inet_csk_schedule_ack(sk);
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			icsk->icsk_ack.lrcvtime = tcp_time_stamp;
			icsk->icsk_ack.ato	 = TCP_ATO_MIN;
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			tcp_incr_quickack(sk);
			tcp_enter_quickack_mode(sk);
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			inet_csk_reset_xmit_timer(sk, ICSK_TIME_DACK,
						  TCP_DELACK_MAX, TCP_RTO_MAX);
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discard:
			__kfree_skb(skb);
			return 0;
		} else {
			tcp_send_ack(sk);
		}
		return -1;
	}

	/* No ACK in the segment */

	if (th->rst) {
		/* rfc793:
		 * "If the RST bit is set
		 *
		 *      Otherwise (no ACK) drop the segment and return."
		 */

		goto discard_and_undo;
	}

	/* PAWS check. */
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	if (tp->rx_opt.ts_recent_stamp && tp->rx_opt.saw_tstamp &&
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	    tcp_paws_reject(&tp->rx_opt, 0))
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		goto discard_and_undo;

	if (th->syn) {
		/* We see SYN without ACK. It is attempt of
		 * simultaneous connect with crossed SYNs.
		 * Particularly, it can be connect to self.
		 */
		tcp_set_state(sk, TCP_SYN_RECV);

		if (tp->rx_opt.saw_tstamp) {
			tp->rx_opt.tstamp_ok = 1;
			tcp_store_ts_recent(tp);
			tp->tcp_header_len =
				sizeof(struct tcphdr) + TCPOLEN_TSTAMP_ALIGNED;
		} else {
			tp->tcp_header_len = sizeof(struct tcphdr);
		}

		tp->rcv_nxt = TCP_SKB_CB(skb)->seq + 1;
		tp->rcv_wup = TCP_SKB_CB(skb)->seq + 1;

		/* RFC1323: The window in SYN & SYN/ACK segments is
		 * never scaled.
		 */
		tp->snd_wnd    = ntohs(th->window);
		tp->snd_wl1    = TCP_SKB_CB(skb)->seq;
		tp->max_window = tp->snd_wnd;

		TCP_ECN_rcv_syn(tp, th);

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		tcp_mtup_init(sk);
5848
		tcp_sync_mss(sk, icsk->icsk_pmtu_cookie);
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		tcp_initialize_rcv_mss(sk);

		tcp_send_synack(sk);
#if 0
		/* Note, we could accept data and URG from this segment.
		 * There are no obstacles to make this.
		 *
		 * However, if we ignore data in ACKless segments sometimes,
		 * we have no reasons to accept it sometimes.
		 * Also, seems the code doing it in step6 of tcp_rcv_state_process
		 * is not flawless. So, discard packet for sanity.
		 * Uncomment this return to process the data.
		 */
		return -1;
#else
		goto discard;
#endif
	}
	/* "fifth, if neither of the SYN or RST bits is set then
	 * drop the segment and return."
	 */

discard_and_undo:
	tcp_clear_options(&tp->rx_opt);
	tp->rx_opt.mss_clamp = saved_clamp;
	goto discard;

reset_and_undo:
	tcp_clear_options(&tp->rx_opt);
	tp->rx_opt.mss_clamp = saved_clamp;
	return 1;
}

/*
 *	This function implements the receiving procedure of RFC 793 for
5884
 *	all states except ESTABLISHED and TIME_WAIT.
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 *	It's called from both tcp_v4_rcv and tcp_v6_rcv and should be
 *	address independent.
 */
5888

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int tcp_rcv_state_process(struct sock *sk, struct sk_buff *skb,
5890
			  const struct tcphdr *th, unsigned int len)
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{
	struct tcp_sock *tp = tcp_sk(sk);
5893
	struct inet_connection_sock *icsk = inet_csk(sk);
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	int queued = 0;

	tp->rx_opt.saw_tstamp = 0;

	switch (sk->sk_state) {
	case TCP_CLOSE:
		goto discard;

	case TCP_LISTEN:
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5903
		if (th->ack)
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			return 1;

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		if (th->rst)
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			goto discard;

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		if (th->syn) {
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			if (th->fin)
				goto discard;
5912
			if (icsk->icsk_af_ops->conn_request(sk, skb) < 0)
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				return 1;

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			/* Now we have several options: In theory there is
			 * nothing else in the frame. KA9Q has an option to
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5917
			 * send data with the syn, BSD accepts data with the
5918 5919 5920
			 * syn up to the [to be] advertised window and
			 * Solaris 2.1 gives you a protocol error. For now
			 * we just ignore it, that fits the spec precisely
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			 * and avoids incompatibilities. It would be nice in
			 * future to drop through and process the data.
			 *
5924
			 * Now that TTCP is starting to be used we ought to
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			 * queue this data.
			 * But, this leaves one open to an easy denial of
5927
			 * service attack, and SYN cookies can't defend
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			 * against this problem. So, we drop the data
5929 5930
			 * in the interest of security over speed unless
			 * it's still in use.
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5931
			 */
5932 5933
			kfree_skb(skb);
			return 0;
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		}
		goto discard;

	case TCP_SYN_SENT:
		queued = tcp_rcv_synsent_state_process(sk, skb, th, len);
		if (queued >= 0)
			return queued;

		/* Do step6 onward by hand. */
		tcp_urg(sk, skb, th);
		__kfree_skb(skb);
5945
		tcp_data_snd_check(sk);
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		return 0;
	}

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	if (!tcp_validate_incoming(sk, skb, th, 0))
		return 0;
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	/* step 5: check the ACK field */
	if (th->ack) {
5954
		int acceptable = tcp_ack(sk, skb, FLAG_SLOWPATH) > 0;
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		switch (sk->sk_state) {
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		case TCP_SYN_RECV:
			if (acceptable) {
				tp->copied_seq = tp->rcv_nxt;
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5960
				smp_mb();
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				tcp_set_state(sk, TCP_ESTABLISHED);
				sk->sk_state_change(sk);

				/* Note, that this wakeup is only for marginal
				 * crossed SYN case. Passively open sockets
				 * are not waked up, because sk->sk_sleep ==
				 * NULL and sk->sk_socket == NULL.
				 */
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				if (sk->sk_socket)
					sk_wake_async(sk,
5971
						      SOCK_WAKE_IO, POLL_OUT);
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				tp->snd_una = TCP_SKB_CB(skb)->ack_seq;
				tp->snd_wnd = ntohs(th->window) <<
					      tp->rx_opt.snd_wscale;
5976
				tcp_init_wl(tp, TCP_SKB_CB(skb)->seq);
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				if (tp->rx_opt.tstamp_ok)
					tp->advmss -= TCPOLEN_TSTAMP_ALIGNED;

				/* Make sure socket is routed, for
				 * correct metrics.
				 */
5984
				icsk->icsk_af_ops->rebuild_header(sk);
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				tcp_init_metrics(sk);

5988
				tcp_init_congestion_control(sk);
5989

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				/* Prevent spurious tcp_cwnd_restart() on
				 * first data packet.
				 */
				tp->lsndtime = tcp_time_stamp;

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				tcp_mtup_init(sk);
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				tcp_initialize_rcv_mss(sk);
				tcp_init_buffer_space(sk);
				tcp_fast_path_on(tp);
			} else {
				return 1;
			}
			break;

		case TCP_FIN_WAIT1:
			if (tp->snd_una == tp->write_seq) {
				tcp_set_state(sk, TCP_FIN_WAIT2);
				sk->sk_shutdown |= SEND_SHUTDOWN;
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				dst_confirm(__sk_dst_get(sk));
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				if (!sock_flag(sk, SOCK_DEAD))
					/* Wake up lingering close() */
					sk->sk_state_change(sk);
				else {
					int tmo;

					if (tp->linger2 < 0 ||
					    (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
					     after(TCP_SKB_CB(skb)->end_seq - th->fin, tp->rcv_nxt))) {
						tcp_done(sk);
6020
						NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPABORTONDATA);
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						return 1;
					}

6024
					tmo = tcp_fin_time(sk);
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					if (tmo > TCP_TIMEWAIT_LEN) {
6026
						inet_csk_reset_keepalive_timer(sk, tmo - TCP_TIMEWAIT_LEN);
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					} else if (th->fin || sock_owned_by_user(sk)) {
						/* Bad case. We could lose such FIN otherwise.
						 * It is not a big problem, but it looks confusing
						 * and not so rare event. We still can lose it now,
						 * if it spins in bh_lock_sock(), but it is really
						 * marginal case.
						 */
6034
						inet_csk_reset_keepalive_timer(sk, tmo);
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					} else {
						tcp_time_wait(sk, TCP_FIN_WAIT2, tmo);
						goto discard;
					}
				}
			}
			break;

		case TCP_CLOSING:
			if (tp->snd_una == tp->write_seq) {
				tcp_time_wait(sk, TCP_TIME_WAIT, 0);
				goto discard;
			}
			break;

		case TCP_LAST_ACK:
			if (tp->snd_una == tp->write_seq) {
				tcp_update_metrics(sk);
				tcp_done(sk);
				goto discard;
			}
			break;
		}
	} else
		goto discard;

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	/* ts_recent update must be made after we are sure that the packet
	 * is in window.
	 */
	tcp_replace_ts_recent(tp, TCP_SKB_CB(skb)->seq);

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	/* step 6: check the URG bit */
	tcp_urg(sk, skb, th);

	/* step 7: process the segment text */
	switch (sk->sk_state) {
	case TCP_CLOSE_WAIT:
	case TCP_CLOSING:
	case TCP_LAST_ACK:
		if (!before(TCP_SKB_CB(skb)->seq, tp->rcv_nxt))
			break;
	case TCP_FIN_WAIT1:
	case TCP_FIN_WAIT2:
		/* RFC 793 says to queue data in these states,
6079
		 * RFC 1122 says we MUST send a reset.
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		 * BSD 4.4 also does reset.
		 */
		if (sk->sk_shutdown & RCV_SHUTDOWN) {
			if (TCP_SKB_CB(skb)->end_seq != TCP_SKB_CB(skb)->seq &&
			    after(TCP_SKB_CB(skb)->end_seq - th->fin, tp->rcv_nxt)) {
6085
				NET_INC_STATS_BH(sock_net(sk), LINUX_MIB_TCPABORTONDATA);
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				tcp_reset(sk);
				return 1;
			}
		}
		/* Fall through */
6091
	case TCP_ESTABLISHED:
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		tcp_data_queue(sk, skb);
		queued = 1;
		break;
	}

	/* tcp_data could move socket to TIME-WAIT */
	if (sk->sk_state != TCP_CLOSE) {
6099
		tcp_data_snd_check(sk);
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		tcp_ack_snd_check(sk);
	}

6103
	if (!queued) {
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discard:
		__kfree_skb(skb);
	}
	return 0;
}
EXPORT_SYMBOL(tcp_rcv_state_process);