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7ee5e29758
- multi_coalesce/batch: the ordering contract now states what Flush actually guarantees -- per-flow DATA order -- and names the two shapes later data may legally overtake (pure ACKs by design, and unparseable in-flow shapes as an accepted tradeoff). - validVnetHdr claimed DATA_VALID makes the stack skip L4 checksum verification; the tun write path ignores that bit entirely. What the header buys is the absence of NEEDS_CSUM. - tun_darwin Write said "only valid for single threaded use"; it is concurrency-safe and concurrent callers exist. - udp_coalesce eviction comment said "Seal it" but never sets sealed. - recordCapability: note the gauges are process-global while the state is per-socket (last writer wins). - drop a stale tunReadBufSize reference. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_014ugV2edVqoz3tBvq9J6yWp
154 lines
5.0 KiB
Go
154 lines
5.0 KiB
Go
package batch
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import (
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"errors"
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"io"
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"log/slog"
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"github.com/slackhq/nebula/iputil"
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)
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// MultiCoalescer fans plaintext packets out to lane-specific batchers based
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// on the IP/L4 protocol of the packet.
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//
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// Lanes are processed independently: the TCP coalescer only sees TCP, the
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// UDP coalescer only sees UDP, and the passthrough lane handles everything else.
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// The ordering contract is per-flow DATA order: a flow's payload-bearing
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// packets are never reordered relative to each other, because a single
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// 5-tuple only ever lands in one lane and each lane emits its slots in
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// creation order. Two shapes are deliberately allowed to be overtaken by
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// later same-flow data:
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// - pure ACKs, which pass through without sealing the flow's open slot
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// (a late ACK is just a stale ACK; see TCPCoalescer.commitParsed);
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// - unparseable in-flow shapes (fragments, IP options), whose lane-level
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// addPassthrough does not close the flow's open slot either. Closing it
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// would need a full open-slot barrier (the flow key is unknown when the
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// parse fails) — an accepted tradeoff: mid-flow fragments are rare and
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// receivers reassemble regardless of arrival order.
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//
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// Routing still follows the flow, not the coalesceability: IPv4 fragments
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// keep their L4 proto visible and IPv6 extension chains are walked to the
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// terminal proto, so a flow's non-coalesceable shapes ride its lane as
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// in-lane passthroughs rather than falling to the later-flushed pt lane.
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//
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// Cross-lane order is intentionally NOT preserved across the TCP/UDP/passthrough split.
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type MultiCoalescer struct {
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tcp *TCPCoalescer
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udp *UDPCoalescer
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pt *Passthrough
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}
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// NewMultiCoalescer builds a multi-lane batcher over w, based on available protocol support.
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func NewMultiCoalescer(w io.Writer, l *slog.Logger) RxBatcher {
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m := &MultiCoalescer{
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pt: NewPassthrough(w),
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}
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m.tcp = NewTCPCoalescer(w, l)
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m.udp = NewUDPCoalescer(w)
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if m.tcp == nil && m.udp == nil {
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return m.pt //no offloads? Use passthrough directly.
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}
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return m
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}
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// IANA protocol numbers for the IPv6 extension headers
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// iputil.IPv6FindUpperProtocol can step over. The set here must match what
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// that walker walks: it is the hot path's cheap pre-guard, so the walk is
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// only paid when it can actually make progress.
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const (
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ipProtoHopByHop = 0
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ipProtoRouting = 43
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ipProtoFragment = 44
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ipProtoAH = 51
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ipProtoDestOpts = 60
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)
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// isIPv6ExtHeader reports whether nh is an extension header the terminal-
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// protocol walk knows how to step over.
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func isIPv6ExtHeader(nh byte) bool {
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switch nh {
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case ipProtoHopByHop, ipProtoRouting, ipProtoFragment, ipProtoAH, ipProtoDestOpts:
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return true
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}
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return false
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}
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// Commit dispatches pkt to the appropriate lane based on IP version + L4 proto.
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// On the success path the IP/TCP-or-UDP parse happens here once and the
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// parsed struct is handed to the lane via commitParsed so the lane doesn't re-walk the header.
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func (m *MultiCoalescer) Commit(pkt []byte) error {
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if len(pkt) < 20 {
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return m.pt.Commit(pkt)
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}
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v := pkt[0] >> 4
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var proto byte
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switch v {
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case 4:
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proto = pkt[9]
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case 6:
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if len(pkt) < 40 {
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return m.pt.Commit(pkt)
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}
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proto = pkt[6]
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if isIPv6ExtHeader(proto) {
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// Walk to the terminal protocol so the packet routes to its
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// flow's lane. It stays non-coalesceable — the lane's parser
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// rejects the ext-header shape and emits it as an in-lane
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// passthrough — but landing in the right lane preserves
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// per-flow order, exactly like IPv4 fragments (whose header
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// keeps the L4 proto visible) already do. Fragments are the
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// case that matters: every fragment names the flow's L4, so a
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// fragmented datagram travels with its flow's unfragmented
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// siblings instead of the passthrough lane, which flushes
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// after every coalescer lane and would emit it behind data
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// that arrived later. An unresolved walk (truncated or crafted
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// over-long chain) yields a non-transport number and falls to
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// the pt lane below.
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proto, _, _ = iputil.IPv6FindUpperProtocol(pkt)
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}
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default:
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return m.pt.Commit(pkt)
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}
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switch proto {
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case ipProtoTCP:
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if m.tcp != nil {
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info, ok := parseTCPBase(pkt)
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if !ok {
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// Malformed/unsupported TCP shape (IP options, fragments, ...).
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// Handle this via passthrough support in the TCP coalescer, to attempt to preserve flow order.
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m.tcp.addPassthrough(pkt)
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return nil
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}
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return m.tcp.commitParsed(pkt, info)
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}
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case ipProtoUDP:
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if m.udp != nil {
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info, ok := parseUDP(pkt)
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if !ok {
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m.udp.addPassthrough(pkt) //we could also m.pt.Commit() here I guess?
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return nil
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}
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return m.udp.commitParsed(pkt, info)
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}
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}
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return m.pt.Commit(pkt)
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}
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func (m *MultiCoalescer) Flush() error {
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var errs []error
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if m.tcp != nil {
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if err := m.tcp.Flush(); err != nil {
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errs = append(errs, err)
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}
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}
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if m.udp != nil {
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if err := m.udp.Flush(); err != nil {
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errs = append(errs, err)
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}
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}
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if err := m.pt.Flush(); err != nil {
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errs = append(errs, err)
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}
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return errors.Join(errs...)
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}
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