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@@ -113,19 +113,12 @@ static void ccid2_change_l_ack_ratio(struct sock *sk, u32 val)
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dp->dccps_l_ack_ratio = val;
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}
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-static void ccid2_change_srtt(struct ccid2_hc_tx_sock *hc, long val)
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-{
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- ccid2_pr_debug("change SRTT to %ld\n", val);
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- hc->tx_srtt = val;
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-}
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-
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static void ccid2_start_rto_timer(struct sock *sk);
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static void ccid2_hc_tx_rto_expire(unsigned long data)
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{
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struct sock *sk = (struct sock *)data;
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struct ccid2_hc_tx_sock *hc = ccid2_hc_tx_sk(sk);
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- long s;
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bh_lock_sock(sk);
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if (sock_owned_by_user(sk)) {
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@@ -137,10 +130,8 @@ static void ccid2_hc_tx_rto_expire(unsigned long data)
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/* back-off timer */
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hc->tx_rto <<= 1;
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-
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- s = hc->tx_rto / HZ;
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- if (s > 60)
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- hc->tx_rto = 60 * HZ;
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+ if (hc->tx_rto > DCCP_RTO_MAX)
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+ hc->tx_rto = DCCP_RTO_MAX;
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ccid2_start_rto_timer(sk);
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@@ -168,7 +159,7 @@ static void ccid2_start_rto_timer(struct sock *sk)
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{
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struct ccid2_hc_tx_sock *hc = ccid2_hc_tx_sk(sk);
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- ccid2_pr_debug("setting RTO timeout=%ld\n", hc->tx_rto);
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+ ccid2_pr_debug("setting RTO timeout=%u\n", hc->tx_rto);
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BUG_ON(timer_pending(&hc->tx_rtotimer));
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sk_reset_timer(sk, &hc->tx_rtotimer, jiffies + hc->tx_rto);
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@@ -339,9 +330,86 @@ static void ccid2_hc_tx_kill_rto_timer(struct sock *sk)
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ccid2_pr_debug("deleted RTO timer\n");
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}
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-static inline void ccid2_new_ack(struct sock *sk,
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- struct ccid2_seq *seqp,
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- unsigned int *maxincr)
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+/**
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+ * ccid2_rtt_estimator - Sample RTT and compute RTO using RFC2988 algorithm
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+ * This code is almost identical with TCP's tcp_rtt_estimator(), since
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+ * - it has a higher sampling frequency (recommended by RFC 1323),
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+ * - the RTO does not collapse into RTT due to RTTVAR going towards zero,
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+ * - it is simple (cf. more complex proposals such as Eifel timer or research
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+ * which suggests that the gain should be set according to window size),
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+ * - in tests it was found to work well with CCID2 [gerrit].
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+ */
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+static void ccid2_rtt_estimator(struct sock *sk, const long mrtt)
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+{
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+ struct ccid2_hc_tx_sock *hc = ccid2_hc_tx_sk(sk);
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+ long m = mrtt ? : 1;
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+
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+ if (hc->tx_srtt == 0) {
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+ /* First measurement m */
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+ hc->tx_srtt = m << 3;
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+ hc->tx_mdev = m << 1;
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+
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+ hc->tx_mdev_max = max(TCP_RTO_MIN, hc->tx_mdev);
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+ hc->tx_rttvar = hc->tx_mdev_max;
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+ hc->tx_rtt_seq = dccp_sk(sk)->dccps_gss;
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+ } else {
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+ /* Update scaled SRTT as SRTT += 1/8 * (m - SRTT) */
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+ m -= (hc->tx_srtt >> 3);
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+ hc->tx_srtt += m;
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+
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+ /* Similarly, update scaled mdev with regard to |m| */
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+ if (m < 0) {
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+ m = -m;
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+ m -= (hc->tx_mdev >> 2);
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+ /*
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+ * This neutralises RTO increase when RTT < SRTT - mdev
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+ * (see P. Sarolahti, A. Kuznetsov,"Congestion Control
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+ * in Linux TCP", USENIX 2002, pp. 49-62).
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+ */
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+ if (m > 0)
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+ m >>= 3;
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+ } else {
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+ m -= (hc->tx_mdev >> 2);
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+ }
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+ hc->tx_mdev += m;
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+
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+ if (hc->tx_mdev > hc->tx_mdev_max) {
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+ hc->tx_mdev_max = hc->tx_mdev;
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+ if (hc->tx_mdev_max > hc->tx_rttvar)
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+ hc->tx_rttvar = hc->tx_mdev_max;
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+ }
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+
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+ /*
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+ * Decay RTTVAR at most once per flight, exploiting that
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+ * 1) pipe <= cwnd <= Sequence_Window = W (RFC 4340, 7.5.2)
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+ * 2) AWL = GSS-W+1 <= GAR <= GSS (RFC 4340, 7.5.1)
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+ * GAR is a useful bound for FlightSize = pipe.
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+ * AWL is probably too low here, as it over-estimates pipe.
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+ */
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+ if (after48(dccp_sk(sk)->dccps_gar, hc->tx_rtt_seq)) {
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+ if (hc->tx_mdev_max < hc->tx_rttvar)
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+ hc->tx_rttvar -= (hc->tx_rttvar -
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+ hc->tx_mdev_max) >> 2;
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+ hc->tx_rtt_seq = dccp_sk(sk)->dccps_gss;
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+ hc->tx_mdev_max = TCP_RTO_MIN;
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+ }
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+ }
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+
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+ /*
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+ * Set RTO from SRTT and RTTVAR
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+ * As in TCP, 4 * RTTVAR >= TCP_RTO_MIN, giving a minimum RTO of 200 ms.
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+ * This agrees with RFC 4341, 5:
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+ * "Because DCCP does not retransmit data, DCCP does not require
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+ * TCP's recommended minimum timeout of one second".
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+ */
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+ hc->tx_rto = (hc->tx_srtt >> 3) + hc->tx_rttvar;
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+
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+ if (hc->tx_rto > DCCP_RTO_MAX)
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+ hc->tx_rto = DCCP_RTO_MAX;
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+}
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+
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+static void ccid2_new_ack(struct sock *sk, struct ccid2_seq *seqp,
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+ unsigned int *maxincr)
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{
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struct ccid2_hc_tx_sock *hc = ccid2_hc_tx_sk(sk);
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@@ -355,64 +423,15 @@ static inline void ccid2_new_ack(struct sock *sk,
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hc->tx_cwnd += 1;
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hc->tx_packets_acked = 0;
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}
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-
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- /* update RTO */
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- if (hc->tx_srtt == -1 ||
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- time_after(jiffies, hc->tx_lastrtt + hc->tx_srtt)) {
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- unsigned long r = (long)jiffies - (long)seqp->ccid2s_sent;
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- int s;
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-
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- /* first measurement */
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- if (hc->tx_srtt == -1) {
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- ccid2_pr_debug("R: %lu Time=%lu seq=%llu\n",
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- r, jiffies,
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- (unsigned long long)seqp->ccid2s_seq);
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- ccid2_change_srtt(hc, r);
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- hc->tx_rttvar = r >> 1;
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- } else {
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- /* RTTVAR */
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- long tmp = hc->tx_srtt - r;
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- long srtt;
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-
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- if (tmp < 0)
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- tmp *= -1;
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-
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- tmp >>= 2;
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- hc->tx_rttvar *= 3;
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- hc->tx_rttvar >>= 2;
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- hc->tx_rttvar += tmp;
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-
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- /* SRTT */
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- srtt = hc->tx_srtt;
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- srtt *= 7;
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- srtt >>= 3;
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- tmp = r >> 3;
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- srtt += tmp;
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- ccid2_change_srtt(hc, srtt);
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- }
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- s = hc->tx_rttvar << 2;
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- /* clock granularity is 1 when based on jiffies */
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- if (!s)
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- s = 1;
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- hc->tx_rto = hc->tx_srtt + s;
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-
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- /* must be at least a second */
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- s = hc->tx_rto / HZ;
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- /* DCCP doesn't require this [but I like it cuz my code sux] */
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-#if 1
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- if (s < 1)
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- hc->tx_rto = HZ;
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-#endif
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- /* max 60 seconds */
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- if (s > 60)
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- hc->tx_rto = HZ * 60;
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-
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- hc->tx_lastrtt = jiffies;
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-
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- ccid2_pr_debug("srtt: %ld rttvar: %ld rto: %ld (HZ=%d) R=%lu\n",
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- hc->tx_srtt, hc->tx_rttvar,
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- hc->tx_rto, HZ, r);
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- }
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+ /*
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+ * FIXME: RTT is sampled several times per acknowledgment (for each
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+ * entry in the Ack Vector), instead of once per Ack (as in TCP SACK).
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+ * This causes the RTT to be over-estimated, since the older entries
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+ * in the Ack Vector have earlier sending times.
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+ * The cleanest solution is to not use the ccid2s_sent field at all
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+ * and instead use DCCP timestamps: requires changes in other places.
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+ */
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+ ccid2_rtt_estimator(sk, jiffies - seqp->ccid2s_sent);
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}
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static void ccid2_congestion_event(struct sock *sk, struct ccid2_seq *seqp)
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@@ -662,9 +681,7 @@ static int ccid2_hc_tx_init(struct ccid *ccid, struct sock *sk)
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if (ccid2_hc_tx_alloc_seq(hc))
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return -ENOMEM;
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- hc->tx_rto = 3 * HZ;
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- ccid2_change_srtt(hc, -1);
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- hc->tx_rttvar = -1;
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+ hc->tx_rto = DCCP_TIMEOUT_INIT;
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hc->tx_rpdupack = -1;
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hc->tx_last_cong = jiffies;
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setup_timer(&hc->tx_rtotimer, ccid2_hc_tx_rto_expire,
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