mirror of
https://github.com/soypat/lneto.git
synced 2026-07-26 02:28:45 +00:00
add loss.go (#168)
This commit is contained in:
@@ -1,6 +1,8 @@
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# Ignore files with no extensions trick:
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# First ignore all.
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*
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# Unignore directories since they usually have no extensions
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!*/
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# Unignore all with extensions.
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!*.*
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!LICENSE
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+15
@@ -76,6 +76,16 @@ type ConnConfig struct {
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// Logger sets the [Conn] logger.
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// Lower level logging available at [Handler.SetLoggers] via [Conn.InternalHandler].
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Logger *slog.Logger
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// LossRecovery is the optional packet-loss recovery algorithm (RTO,
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// congestion control, ...) for the connection. If set, Nanotime must also be
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// set (else Configure returns an error). Leaving it nil disables loss
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// recovery. See [LossRecovery].
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LossRecovery LossRecovery
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// Nanotime is the monotonic time source in nanoseconds (the func() int64
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// convention used across lneto) that drives LossRecovery. It is required when
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// LossRecovery is set and unused otherwise. The tcp package reads it only to
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// stamp the loss-recovery hooks; it holds no clock itself.
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Nanotime func() int64
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}
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// Configure should be called on any newly created connection before usage. See [ConnConfig].
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@@ -83,6 +93,10 @@ func (conn *Conn) Configure(config ConnConfig) (err error) {
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if config.RWBackoff == nil {
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return lneto.ErrMissingHALConfig
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}
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if config.LossRecovery != nil && config.Nanotime == nil {
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// The tcp package holds no clock: a loss-recovery algorithm cannot run without it.
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return lneto.ErrInvalidConfig
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}
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conn.mu.Lock()
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defer conn.mu.Unlock()
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err = conn.h.SetBuffers(config.TxBuf, config.RxBuf, config.TxPacketQueueSize)
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@@ -91,6 +105,7 @@ func (conn *Conn) Configure(config ConnConfig) (err error) {
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}
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conn._backoff = config.RWBackoff
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conn.logger.log = config.Logger
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conn.h.SetLossRecovery(config.LossRecovery, config.Nanotime)
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return nil
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}
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@@ -257,6 +257,16 @@ func (tcb *ControlBlock) HasPendingRetransmit() bool {
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return tcb._state.TxDataOpen() && tcb.dupack >= retransmitAfterDupacks && tcb.nRetransmit <= tcb.dupack-retransmitAfterDupacks
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}
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// RetransmitAll rewinds snd.NXT back to snd.UNA so the next PendingSegment and
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// Send calls retransmit all unacknowledged data from the oldest sequence number
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// (go-back-N). It must be paired with ringTx.RetransmitFromUNA to rewind the
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// transmit buffer. Implements RFC 9293 §3.10.8 (RETRANSMISSION TIMEOUT).
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func (tcb *ControlBlock) RetransmitAll() {
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tcb.snd.NXT = tcb.snd.UNA
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tcb.dupack = 0
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tcb.nRetransmit = 0
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}
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// PendingSegment calculates a suitable next segment to send from a payload length.
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// It does not modify the ControlBlock state or pending segment queue.
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func (tcb *ControlBlock) PendingSegment(payloadLen int) (_ Segment, ok bool) {
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+64
-6
@@ -31,7 +31,15 @@ type Handler struct {
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optcodec OptionCodec
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// reasm tracks out-of-order segments staged in bufRx's free region. Always
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// enabled once buffers are set (see [Handler.SetBuffers]).
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reasm reassembly
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reasm reassembly
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// loss is the optional packet-loss recovery algorithm (RTO, congestion
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// control, ...) driven from the rx/tx hooks. nil disables loss recovery, in
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// which case the connection behaves as if no timing existed. nanotime is the
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// monotonic time source (nanoseconds) passed to those hooks; it is non-nil
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// whenever loss is non-nil (enforced by [Conn.Configure]). See [LossRecovery].
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loss LossRecovery
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nanotime func() int64
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closing bool
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shutdownRx bool
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// nRetransmit stores the number of times the oldest packet was retransmit.
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@@ -71,6 +79,28 @@ func (h *Handler) SetBuffers(txbuf, rxbuf []byte, packets int) error {
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return h.bufTx.ResetOrReuse(txbuf, packets, 0)
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}
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// SetLossRecovery installs the packet-loss recovery algorithm and the monotonic
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// time source (nanoseconds, the func() int64 convention used across lneto) that
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// drives it. The tcp package keeps no clock of its own; nanotime is read only to
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// stamp the rx/tx hooks (see [LossRecovery]). Passing loss == nil disables loss
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// recovery. It should be set before the connection is opened.
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func (h *Handler) SetLossRecovery(loss LossRecovery, nanotime func() int64) {
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h.loss = loss
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h.nanotime = nanotime
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}
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func (h *Handler) lossEnabled() bool { return h.loss != nil }
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// NextDeadline returns the monotonic-nanosecond instant at which the connection
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// must next be serviced by a transmit attempt (e.g. an RTO expiry), or 0 when
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// there is no deadline or no loss recovery is configured. See [LossRecovery].
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func (h *Handler) NextDeadline() int64 {
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if h.loss == nil {
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return 0
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}
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return h.loss.NextDeadline()
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}
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// LocalPort returns the local port of the connection. Returns 0 if the connection is closed and uninitialized.
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func (h *Handler) LocalPort() uint16 {
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return h.localPort
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@@ -129,15 +159,22 @@ func (h *Handler) reset(localPort, remotePort uint16, iss Value) {
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*h = Handler{
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connid: h.connid + 1,
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scb: h.scb,
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bufTx: h.bufTx,
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bufRx: h.bufRx,
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localPort: localPort,
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remotePort: remotePort,
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validator: h.validator,
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logger: h.logger,
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reasm: h.reasm,
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closing: false,
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shutdownRx: false,
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// Persist configuration across reopen:
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validator: h.validator,
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loss: h.loss,
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nanotime: h.nanotime,
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logger: h.logger,
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// persist memory across repoen:
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bufTx: h.bufTx,
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bufRx: h.bufRx,
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reasm: h.reasm,
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}
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if h.lossEnabled() {
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h.loss.Reset()
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}
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h.reasm.clear() // preserve metadata capacity across reopen, drop held segments.
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h.bufTx.ResetOrReuse(nil, 0, iss)
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@@ -175,6 +212,12 @@ func (h *Handler) Recv(incomingPacket []byte) error {
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return nil
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}
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// Notify loss recovery of the received segment (RTT sampling, timer
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// management) and let it drop the segment before processing if it asks to.
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if h.lossEnabled() && !h.loss.PreRx(segIncoming, h.nanotime()).Keep {
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return nil
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}
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// Out-of-order reassembly: buffer in-window data that arrived ahead of the
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// next expected sequence number before the ControlBlock (sequential-only)
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// would reject it. Buffered segments live in bufRx's free region.
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@@ -337,6 +380,18 @@ func (h *Handler) Send(b []byte) (int, error) {
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if h.IsTxOver() {
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return 0, net.ErrClosed
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}
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var now int64
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if h.lossEnabled() {
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now = h.nanotime()
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if h.loss.PreTx(now).RetransmitAll {
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// Go-back-N retransmission directed by loss recovery: rewind the
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// send sequence and transmit buffer so unacknowledged data is resent
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// from snd.UNA. Done before the early short-circuit below so an
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// expired RTO retransmits even with no new data queued.
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h.scb.RetransmitAll()
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h.bufTx.RetransmitFromUNA()
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}
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}
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awaitingSyn := h.AwaitingSynSend()
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requeueControl := h.requeueControl
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buffered := h.bufTx.BufferedUnsent()
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@@ -419,6 +474,9 @@ func (h *Handler) Send(b []byte) (int, error) {
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} else if prevState != h.scb.State() && h.logenabled(slog.LevelInfo) {
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h.info("tcp.Handler:tx-statechange", slog.Uint64("port", uint64(h.localPort)), slog.String("oldState", prevState.String()), slog.String("newState", h.scb.State().String()), slog.String("txflags", segment.Flags.String()))
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}
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if h.lossEnabled() {
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h.loss.PostTx(segment, now)
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}
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h.requeueControl = false
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tfrm.SetSourcePort(h.localPort)
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tfrm.SetDestinationPort(h.remotePort)
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+83
@@ -0,0 +1,83 @@
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package tcp
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// LossRecovery abstracts TCP packet-loss recovery: RTO, congestion control and
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// any similar algorithm that observes segment traffic and steers the
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// connection's transmit behaviour. As far as the tcp package is concerned these
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// are all the same thing — packet-loss recovery algorithms — so they share one
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// interface (see discussion #157).
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//
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// The tcp package stays free of any time source: the current monotonic time in
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// nanoseconds (the func() int64 convention used across lneto) is passed in at
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// each hook boundary. It originates from [ConnConfig.Nanotime] and satisfies the
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// "WHEN was this segment rx/tx'd" requirement without a clock living inside the
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// state machine, which also keeps implementations deterministic for testing
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// (see issue #140).
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//
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// The interface is intentionally free of errors: an implementation handles or
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// reports its own errors rather than propagating them into lneto internals.
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//
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// Introspection (smoothed RTT, current window, ...) is deliberately left off the
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// interface; expose it on the concrete implementation the caller constructs and
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// hands to [ConnConfig].
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type LossRecovery interface {
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// Reset returns the implementation to its initial, pre-connection state. It
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// is invoked whenever the connection is (re)opened or aborted so a single
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// LossRecovery value can be reused across the lifetime of connection reuse
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// (see discussion #115).
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Reset()
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// NextDeadline returns the monotonic-nanosecond instant at which the
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// connection must next be serviced by a transmit attempt — typically the RTO
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// expiry. A return of 0 means there is no pending deadline. It replaces a
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// poll/atomic-flag scheme with a deadline the caller's event loop can
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// schedule against.
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NextDeadline() int64
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// PreRx is called for every segment received on the TCP port before the
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// state machine processes it, with the monotonic time the segment arrived. It
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// returns whether the segment should be kept (processed) or dropped.
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PreRx(incoming Segment, now int64) RxDirective
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// PreTx is called on entering the transmit path (Encapsulate), before a
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// segment is built, with the current monotonic time. Its directive tells the
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// connection whether to retransmit unacknowledged data, rewind the send
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// pointer, or hold back new data.
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PreTx(now int64) TxDirective
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// PostTx is called on leaving the transmit path with the segment that was
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// actually emitted and the monotonic time it was sent. This is where segment
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// timing (for RTT sampling and the retransmission timer) is recorded.
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PostTx(outgoing Segment, now int64)
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}
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// TxDirective is returned by [LossRecovery.PreTx] to steer the transmit path.
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// The zero value directs the connection to proceed normally (send new data if
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// available, no retransmission).
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type TxDirective struct {
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// RewindNXT is the number of sequence-space octets to rewind snd.NXT by
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// before transmitting, for partial (e.g. selective) retransmission. Zero
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// means no rewind. It is independent of Retransmit, which rewinds fully to
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// snd.UNA.
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// RewindNXT uint32
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// RetransmitAll requests go-back-N retransmission: the connection rewinds
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// snd.NXT to snd.UNA and resends unacknowledged data from the oldest
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// sequence number.
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RetransmitAll bool
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// HoldNew pauses transmission of new data (for example when the congestion
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// window is exhausted). Retransmissions already directed by this same
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// directive still proceed.
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// HoldNew bool
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}
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// RxDirective is returned by [LossRecovery.PreRx].
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//
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// NOTE: its shape is the minimum viable contract — it mirrors the original
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// PreRx "keep" boolean from discussion #157 — and is the one element of the
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// interface not yet fully settled there. It is a struct (rather than a bare
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// bool) so fields can be added without breaking implementations.
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type RxDirective struct {
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// Keep reports whether the received segment should be handed to the state
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// machine. A false value drops the segment before it is processed.
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Keep bool
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}
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@@ -0,0 +1,262 @@
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package tcp
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import (
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"math/rand"
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"testing"
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"github.com/soypat/lneto/ethernet"
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)
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// recordingLoss is a test LossRecovery that records every hook invocation and
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// lets the test steer the directives returned to the Handler. It is the
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// interface counterpart driven by the Handler under test.
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type recordingLoss struct {
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resets int
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preRx []hookCall
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preTx []int64
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postTx []hookCall
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deadline int64 // value NextDeadline reports back.
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// Directives handed back to the Handler.
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keep bool // PreRx result. Default true (see newRecordingLoss).
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tx TxDirective // PreTx result.
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}
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type hookCall struct {
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seg Segment
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now int64
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}
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func newRecordingLoss() *recordingLoss { return &recordingLoss{keep: true} }
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var _ LossRecovery = (*recordingLoss)(nil)
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func (l *recordingLoss) Reset() { l.resets++ }
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func (l *recordingLoss) NextDeadline() int64 { return l.deadline }
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func (l *recordingLoss) PreRx(incoming Segment, now int64) RxDirective {
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l.preRx = append(l.preRx, hookCall{seg: incoming, now: now})
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return RxDirective{Keep: l.keep}
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}
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func (l *recordingLoss) PreTx(now int64) TxDirective {
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l.preTx = append(l.preTx, now)
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return l.tx
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}
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func (l *recordingLoss) PostTx(outgoing Segment, now int64) {
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l.postTx = append(l.postTx, hookCall{seg: outgoing, now: now})
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}
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// TestLossRecovery_DisabledByDefault verifies the Handler runs normally with no
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// loss recovery installed: NextDeadline reports no deadline and the transmit/
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// receive paths never touch a nil LossRecovery.
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func TestLossRecovery_DisabledByDefault(t *testing.T) {
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const mtu = ethernet.MaxMTU
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rng := rand.New(rand.NewSource(1))
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client, server := newHandler(t, mtu, 3), newHandler(t, mtu, 3)
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setupClientServer(t, rng, client, server)
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if d := client.NextDeadline(); d != 0 {
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t.Fatalf("NextDeadline with no loss recovery = %d, want 0", d)
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}
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var buf [mtu]byte
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establish(t, client, server, buf[:]) // must not panic on nil loss recovery.
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}
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// TestLossRecovery_HooksInvoked verifies the Handler drives the full hook
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// contract across a handshake: Reset on open, PreTx+PostTx on every transmit,
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// PreRx on every receive, each stamped with the configured monotonic clock.
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func TestLossRecovery_HooksInvoked(t *testing.T) {
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const mtu = ethernet.MaxMTU
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rng := rand.New(rand.NewSource(2))
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client, server := newHandler(t, mtu, 3), newHandler(t, mtu, 3)
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loss := newRecordingLoss()
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const clockNow = 1_000_000
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client.SetLossRecovery(loss, func() int64 { return clockNow })
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setupClientServer(t, rng, client, server) // OpenActive → reset → Reset().
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if loss.resets == 0 {
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t.Fatal("Reset not called on open")
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}
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var buf [mtu]byte
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establish(t, client, server, buf[:])
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// Client emitted SYN and the final ACK: both paths must have hit PreTx/PostTx.
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if len(loss.preTx) == 0 {
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t.Fatal("PreTx never called on transmit")
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}
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if len(loss.postTx) == 0 {
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t.Fatal("PostTx never called on transmit")
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}
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if len(loss.preTx) != len(loss.postTx) {
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t.Fatalf("PreTx calls=%d, PostTx calls=%d, want equal", len(loss.preTx), len(loss.postTx))
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}
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// Client received the SYN-ACK: PreRx must have seen it.
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if len(loss.preRx) == 0 {
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t.Fatal("PreRx never called on receive")
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}
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// The Handler holds no clock: every hook must be stamped from the supplied
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// nanotime source.
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for i, c := range loss.postTx {
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if c.now != clockNow {
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t.Fatalf("PostTx[%d].now = %d, want clock %d", i, c.now, clockNow)
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}
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}
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for i, now := range loss.preTx {
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if now != clockNow {
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t.Fatalf("PreTx[%d].now = %d, want clock %d", i, now, clockNow)
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}
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}
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for i, c := range loss.preRx {
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if c.now != clockNow {
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t.Fatalf("PreRx[%d].now = %d, want clock %d", i, c.now, clockNow)
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}
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}
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// PostTx receives the segment actually emitted: the first is the SYN.
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if !loss.postTx[0].seg.Flags.HasAny(FlagSYN) {
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t.Fatalf("first PostTx segment flags=%s, want SYN", loss.postTx[0].seg.Flags)
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}
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}
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// TestLossRecovery_NextDeadlineDelegates verifies NextDeadline is forwarded to
|
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// the installed LossRecovery unchanged.
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func TestLossRecovery_NextDeadlineDelegates(t *testing.T) {
|
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const mtu = ethernet.MaxMTU
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rng := rand.New(rand.NewSource(3))
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client, server := newHandler(t, mtu, 3), newHandler(t, mtu, 3)
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loss := newRecordingLoss()
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loss.deadline = 4242
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client.SetLossRecovery(loss, func() int64 { return 1 })
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setupClientServer(t, rng, client, server)
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if d := client.NextDeadline(); d != 4242 {
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t.Fatalf("NextDeadline = %d, want delegated 4242", d)
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}
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}
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||||
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||||
// TestLossRecovery_PreRxDropsSegment verifies a PreRx directive of Keep=false
|
||||
// drops the segment before the state machine sees it: the payload is not
|
||||
// buffered and connection state is untouched.
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func TestLossRecovery_PreRxDropsSegment(t *testing.T) {
|
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const mtu = ethernet.MaxMTU
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rng := rand.New(rand.NewSource(4))
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client, server := newHandler(t, mtu, 3), newHandler(t, mtu, 3)
|
||||
|
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loss := newRecordingLoss()
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server.SetLossRecovery(loss, func() int64 { return 1 })
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||||
setupClientServer(t, rng, client, server)
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var buf [mtu]byte
|
||||
establish(t, client, server, buf[:]) // keep=true so handshake completes.
|
||||
|
||||
// Now start dropping everything the server receives.
|
||||
loss.keep = false
|
||||
preRxBefore := len(loss.preRx)
|
||||
|
||||
data := []byte("dropme")
|
||||
if _, err := client.Write(data); err != nil {
|
||||
t.Fatal("client write:", err)
|
||||
}
|
||||
clear(buf[:])
|
||||
n, err := client.Send(buf[:])
|
||||
if err != nil {
|
||||
t.Fatal("client send:", err)
|
||||
}
|
||||
|
||||
if err := server.Recv(buf[:n]); err != nil {
|
||||
t.Fatalf("dropped segment must return nil, got %v", err)
|
||||
}
|
||||
if len(loss.preRx) != preRxBefore+1 {
|
||||
t.Fatalf("PreRx calls=%d, want %d (segment must reach PreRx)", len(loss.preRx), preRxBefore+1)
|
||||
}
|
||||
if server.BufferedInput() != 0 {
|
||||
t.Fatalf("dropped segment must not be buffered, got %d bytes", server.BufferedInput())
|
||||
}
|
||||
if server.State() != StateEstablished {
|
||||
t.Fatalf("dropped segment must not change state, got %s", server.State())
|
||||
}
|
||||
}
|
||||
|
||||
// TestLossRecovery_PreTxRetransmitAll verifies a PreTx directive of
|
||||
// RetransmitAll drives go-back-N: the Handler rewinds and re-emits already-sent,
|
||||
// unacknowledged data from snd.UNA on the next transmit.
|
||||
func TestLossRecovery_PreTxRetransmitAll(t *testing.T) {
|
||||
const mtu = ethernet.MaxMTU
|
||||
rng := rand.New(rand.NewSource(5))
|
||||
client, server := newHandler(t, mtu, 3), newHandler(t, mtu, 3)
|
||||
|
||||
loss := newRecordingLoss()
|
||||
client.SetLossRecovery(loss, func() int64 { return 1 })
|
||||
setupClientServer(t, rng, client, server)
|
||||
var buf [mtu]byte
|
||||
establish(t, client, server, buf[:])
|
||||
|
||||
// Emit one data segment; server never ACKs, so it stays unacknowledged.
|
||||
data := []byte("payload")
|
||||
if _, err := client.Write(data); err != nil {
|
||||
t.Fatal("client write:", err)
|
||||
}
|
||||
clear(buf[:])
|
||||
n, err := client.Send(buf[:])
|
||||
if err != nil {
|
||||
t.Fatal("client send data:", err)
|
||||
}
|
||||
if n <= sizeHeaderTCP {
|
||||
t.Fatal("expected data segment")
|
||||
}
|
||||
firstSeg := mustSegment(t, buf[:n], n-sizeHeaderTCP)
|
||||
|
||||
// Direct go-back-N on the next transmit.
|
||||
loss.tx = TxDirective{RetransmitAll: true}
|
||||
clear(buf[:])
|
||||
n, err = client.Send(buf[:])
|
||||
if err != nil {
|
||||
t.Fatal("client send retransmit:", err)
|
||||
}
|
||||
if n <= sizeHeaderTCP {
|
||||
t.Fatal("expected retransmitted data segment")
|
||||
}
|
||||
rtSeg := mustSegment(t, buf[:n], n-sizeHeaderTCP)
|
||||
|
||||
if rtSeg.SEQ != firstSeg.SEQ {
|
||||
t.Fatalf("retransmit SEQ=%d, want original UNA SEQ=%d (go-back-N)", rtSeg.SEQ, firstSeg.SEQ)
|
||||
}
|
||||
if rtSeg.DATALEN != firstSeg.DATALEN {
|
||||
t.Fatalf("retransmit DATALEN=%d, want %d", rtSeg.DATALEN, firstSeg.DATALEN)
|
||||
}
|
||||
}
|
||||
|
||||
// TestLossRecovery_ResetOnReopen verifies Reset fires on every (re)open and on
|
||||
// Abort, so a single LossRecovery value can be reused across connection reuse.
|
||||
func TestLossRecovery_ResetOnReopen(t *testing.T) {
|
||||
const mtu = ethernet.MaxMTU
|
||||
client := newHandler(t, mtu, 3)
|
||||
loss := newRecordingLoss()
|
||||
client.SetLossRecovery(loss, func() int64 { return 1 })
|
||||
|
||||
if err := client.OpenActive(1234, 5678, 0); err != nil {
|
||||
t.Fatal("open 1:", err)
|
||||
}
|
||||
afterOpen := loss.resets
|
||||
if afterOpen == 0 {
|
||||
t.Fatal("Reset not called on first open")
|
||||
}
|
||||
|
||||
client.Abort()
|
||||
if loss.resets <= afterOpen {
|
||||
t.Fatalf("Reset not called on Abort: resets=%d, want >%d", loss.resets, afterOpen)
|
||||
}
|
||||
afterAbort := loss.resets
|
||||
|
||||
if err := client.OpenActive(1234, 5678, 0); err != nil {
|
||||
t.Fatal("open 2:", err)
|
||||
}
|
||||
if loss.resets <= afterAbort {
|
||||
t.Fatalf("Reset not called on reopen: resets=%d, want >%d", loss.resets, afterAbort)
|
||||
}
|
||||
}
|
||||
Reference in New Issue
Block a user