mirror of https://github.com/tailscale/tailscale/
Merge 0698ac8362 into ece6e27f39
commit
e532d37686
@ -1,261 +0,0 @@
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// Copyright (c) Tailscale Inc & AUTHORS
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// SPDX-License-Identifier: BSD-3-Clause
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package wgcfg
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import (
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"bufio"
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"bytes"
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"io"
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"net/netip"
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"os"
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"sort"
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"strings"
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"sync"
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"testing"
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"github.com/tailscale/wireguard-go/conn"
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"github.com/tailscale/wireguard-go/device"
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"github.com/tailscale/wireguard-go/tun"
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"go4.org/mem"
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"tailscale.com/types/key"
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)
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func TestDeviceConfig(t *testing.T) {
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newK := func() (key.NodePublic, key.NodePrivate) {
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t.Helper()
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k := key.NewNode()
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return k.Public(), k
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}
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k1, pk1 := newK()
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ip1 := netip.MustParsePrefix("10.0.0.1/32")
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k2, pk2 := newK()
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ip2 := netip.MustParsePrefix("10.0.0.2/32")
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k3, _ := newK()
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ip3 := netip.MustParsePrefix("10.0.0.3/32")
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cfg1 := &Config{
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PrivateKey: pk1,
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Peers: []Peer{{
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PublicKey: k2,
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AllowedIPs: []netip.Prefix{ip2},
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}},
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}
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cfg2 := &Config{
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PrivateKey: pk2,
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Peers: []Peer{{
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PublicKey: k1,
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AllowedIPs: []netip.Prefix{ip1},
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PersistentKeepalive: 5,
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}},
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}
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device1 := NewDevice(newNilTun(), new(noopBind), device.NewLogger(device.LogLevelError, "device1"))
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device2 := NewDevice(newNilTun(), new(noopBind), device.NewLogger(device.LogLevelError, "device2"))
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defer device1.Close()
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defer device2.Close()
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cmp := func(t *testing.T, d *device.Device, want *Config) {
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t.Helper()
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got, err := DeviceConfig(d)
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if err != nil {
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t.Fatal(err)
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}
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prev := new(Config)
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gotbuf := new(strings.Builder)
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err = got.ToUAPI(t.Logf, gotbuf, prev)
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gotStr := gotbuf.String()
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if err != nil {
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t.Errorf("got.ToUAPI(): error: %v", err)
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return
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}
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wantbuf := new(strings.Builder)
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err = want.ToUAPI(t.Logf, wantbuf, prev)
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wantStr := wantbuf.String()
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if err != nil {
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t.Errorf("want.ToUAPI(): error: %v", err)
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return
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}
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if gotStr != wantStr {
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buf := new(bytes.Buffer)
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w := bufio.NewWriter(buf)
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if err := d.IpcGetOperation(w); err != nil {
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t.Errorf("on error, could not IpcGetOperation: %v", err)
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}
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w.Flush()
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t.Errorf("config mismatch:\n---- got:\n%s\n---- want:\n%s\n---- uapi:\n%s", gotStr, wantStr, buf.String())
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}
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}
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t.Run("device1 config", func(t *testing.T) {
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if err := ReconfigDevice(device1, cfg1, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device1, cfg1)
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})
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t.Run("device2 config", func(t *testing.T) {
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if err := ReconfigDevice(device2, cfg2, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device2, cfg2)
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})
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// This is only to test that Config and Reconfig are properly synchronized.
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t.Run("device2 config/reconfig", func(t *testing.T) {
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var wg sync.WaitGroup
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wg.Add(2)
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go func() {
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ReconfigDevice(device2, cfg2, t.Logf)
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wg.Done()
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}()
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go func() {
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DeviceConfig(device2)
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wg.Done()
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}()
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wg.Wait()
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})
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t.Run("device1 modify peer", func(t *testing.T) {
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cfg1.Peers[0].DiscoKey = key.DiscoPublicFromRaw32(mem.B([]byte{0: 1, 31: 0}))
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if err := ReconfigDevice(device1, cfg1, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device1, cfg1)
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})
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t.Run("device1 replace endpoint", func(t *testing.T) {
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cfg1.Peers[0].DiscoKey = key.DiscoPublicFromRaw32(mem.B([]byte{0: 2, 31: 0}))
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if err := ReconfigDevice(device1, cfg1, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device1, cfg1)
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})
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t.Run("device1 add new peer", func(t *testing.T) {
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cfg1.Peers = append(cfg1.Peers, Peer{
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PublicKey: k3,
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AllowedIPs: []netip.Prefix{ip3},
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})
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sort.Slice(cfg1.Peers, func(i, j int) bool {
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return cfg1.Peers[i].PublicKey.Less(cfg1.Peers[j].PublicKey)
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})
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origCfg, err := DeviceConfig(device1)
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if err != nil {
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t.Fatal(err)
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}
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if err := ReconfigDevice(device1, cfg1, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device1, cfg1)
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newCfg, err := DeviceConfig(device1)
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if err != nil {
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t.Fatal(err)
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}
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peer0 := func(cfg *Config) Peer {
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p, ok := cfg.PeerWithKey(k2)
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if !ok {
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t.Helper()
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t.Fatal("failed to look up peer 2")
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}
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return p
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}
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peersEqual := func(p, q Peer) bool {
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return p.PublicKey == q.PublicKey && p.DiscoKey == q.DiscoKey && p.PersistentKeepalive == q.PersistentKeepalive && cidrsEqual(p.AllowedIPs, q.AllowedIPs)
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}
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if !peersEqual(peer0(origCfg), peer0(newCfg)) {
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t.Error("reconfig modified old peer")
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}
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})
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t.Run("device1 remove peer", func(t *testing.T) {
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removeKey := cfg1.Peers[len(cfg1.Peers)-1].PublicKey
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cfg1.Peers = cfg1.Peers[:len(cfg1.Peers)-1]
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if err := ReconfigDevice(device1, cfg1, t.Logf); err != nil {
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t.Fatal(err)
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}
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cmp(t, device1, cfg1)
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newCfg, err := DeviceConfig(device1)
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if err != nil {
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t.Fatal(err)
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}
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_, ok := newCfg.PeerWithKey(removeKey)
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if ok {
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t.Error("reconfig failed to remove peer")
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}
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})
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}
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// TODO: replace with a loopback tunnel
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type nilTun struct {
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events chan tun.Event
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closed chan struct{}
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}
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func newNilTun() tun.Device {
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return &nilTun{
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events: make(chan tun.Event),
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closed: make(chan struct{}),
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}
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}
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func (t *nilTun) File() *os.File { return nil }
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func (t *nilTun) Flush() error { return nil }
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func (t *nilTun) MTU() (int, error) { return 1420, nil }
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func (t *nilTun) Name() (string, error) { return "niltun", nil }
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func (t *nilTun) Events() <-chan tun.Event { return t.events }
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func (t *nilTun) Read(data [][]byte, sizes []int, offset int) (int, error) {
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<-t.closed
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return 0, io.EOF
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}
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func (t *nilTun) Write(data [][]byte, offset int) (int, error) {
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<-t.closed
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return 0, io.EOF
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}
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func (t *nilTun) Close() error {
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close(t.events)
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close(t.closed)
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return nil
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}
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func (t *nilTun) BatchSize() int { return 1 }
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// A noopBind is a conn.Bind that does no actual binding work.
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type noopBind struct{}
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func (noopBind) Open(port uint16) (fns []conn.ReceiveFunc, actualPort uint16, err error) {
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return nil, 1, nil
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}
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func (noopBind) Close() error { return nil }
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func (noopBind) SetMark(mark uint32) error { return nil }
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func (noopBind) Send(b [][]byte, ep conn.Endpoint, offset int) error { return nil }
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func (noopBind) ParseEndpoint(s string) (conn.Endpoint, error) {
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return dummyEndpoint(s), nil
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}
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func (noopBind) BatchSize() int { return 1 }
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// A dummyEndpoint is a string holding the endpoint destination.
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type dummyEndpoint string
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func (e dummyEndpoint) ClearSrc() {}
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func (e dummyEndpoint) SrcToString() string { return "" }
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func (e dummyEndpoint) DstToString() string { return string(e) }
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func (e dummyEndpoint) DstToBytes() []byte { return nil }
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func (e dummyEndpoint) DstIP() netip.Addr { return netip.Addr{} }
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func (dummyEndpoint) SrcIP() netip.Addr { return netip.Addr{} }
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@ -1,154 +0,0 @@
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// Copyright (c) Tailscale Inc & AUTHORS
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// SPDX-License-Identifier: BSD-3-Clause
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package wgcfg
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import (
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"fmt"
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"io"
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"net/netip"
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"strconv"
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"tailscale.com/types/key"
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"tailscale.com/types/logger"
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)
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// ToUAPI writes cfg in UAPI format to w.
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// Prev is the previous device Config.
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//
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// Prev is required so that we can remove now-defunct peers without having to
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// remove and re-add all peers, and so that we can avoid writing information
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// about peers that have not changed since the previous time we wrote our
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// Config.
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func (cfg *Config) ToUAPI(logf logger.Logf, w io.Writer, prev *Config) error {
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var stickyErr error
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set := func(key, value string) {
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if stickyErr != nil {
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return
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}
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_, err := fmt.Fprintf(w, "%s=%s\n", key, value)
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if err != nil {
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stickyErr = err
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}
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}
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setUint16 := func(key string, value uint16) {
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set(key, strconv.FormatUint(uint64(value), 10))
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}
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setPeer := func(peer Peer) {
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set("public_key", peer.PublicKey.UntypedHexString())
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}
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// Device config.
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if !prev.PrivateKey.Equal(cfg.PrivateKey) {
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set("private_key", cfg.PrivateKey.UntypedHexString())
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}
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old := make(map[key.NodePublic]Peer)
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for _, p := range prev.Peers {
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old[p.PublicKey] = p
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}
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// Add/configure all new peers.
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for _, p := range cfg.Peers {
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oldPeer, wasPresent := old[p.PublicKey]
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// We only want to write the peer header/version if we're about
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// to change something about that peer, or if it's a new peer.
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// Figure out up-front whether we'll need to do anything for
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// this peer, and skip doing anything if not.
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//
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// If the peer was not present in the previous config, this
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// implies that this is a new peer; set all of these to 'true'
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// to ensure that we're writing the full peer configuration.
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willSetEndpoint := oldPeer.WGEndpoint != p.PublicKey || !wasPresent
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willChangeIPs := !cidrsEqual(oldPeer.AllowedIPs, p.AllowedIPs) || !wasPresent
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willChangeKeepalive := oldPeer.PersistentKeepalive != p.PersistentKeepalive // if not wasPresent, no need to redundantly set zero (default)
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if !willSetEndpoint && !willChangeIPs && !willChangeKeepalive {
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// It's safe to skip doing anything here; wireguard-go
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// will not remove a peer if it's unspecified unless we
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// tell it to (which we do below if necessary).
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continue
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}
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setPeer(p)
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set("protocol_version", "1")
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// Avoid setting endpoints if the correct one is already known
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// to WireGuard, because doing so generates a bit more work in
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// calling magicsock's ParseEndpoint for effectively a no-op.
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if willSetEndpoint {
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if wasPresent {
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// We had an endpoint, and it was wrong.
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// By construction, this should not happen.
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// If it does, keep going so that we can recover from it,
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// but log so that we know about it,
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// because it is an indicator of other failed invariants.
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// See corp issue 3016.
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logf("[unexpected] endpoint changed from %s to %s", oldPeer.WGEndpoint, p.PublicKey)
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}
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set("endpoint", p.PublicKey.UntypedHexString())
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}
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// TODO: replace_allowed_ips is expensive.
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// If p.AllowedIPs is a strict superset of oldPeer.AllowedIPs,
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// then skip replace_allowed_ips and instead add only
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// the new ipps with allowed_ip.
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if willChangeIPs {
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set("replace_allowed_ips", "true")
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for _, ipp := range p.AllowedIPs {
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set("allowed_ip", ipp.String())
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}
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}
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// Set PersistentKeepalive after the peer is otherwise configured,
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// because it can trigger handshake packets.
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if willChangeKeepalive {
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setUint16("persistent_keepalive_interval", p.PersistentKeepalive)
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}
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}
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// Remove peers that were present but should no longer be.
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for _, p := range cfg.Peers {
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delete(old, p.PublicKey)
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}
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for _, p := range old {
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setPeer(p)
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set("remove", "true")
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}
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if stickyErr != nil {
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stickyErr = fmt.Errorf("ToUAPI: %w", stickyErr)
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}
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return stickyErr
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}
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func cidrsEqual(x, y []netip.Prefix) bool {
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// TODO: re-implement using netaddr.IPSet.Equal.
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if len(x) != len(y) {
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return false
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}
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// First see if they're equal in order, without allocating.
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exact := true
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for i := range x {
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if x[i] != y[i] {
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exact = false
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break
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}
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}
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if exact {
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return true
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}
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// Otherwise, see if they're the same, but out of order.
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m := make(map[netip.Prefix]bool)
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for _, v := range x {
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m[v] = true
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}
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for _, v := range y {
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if !m[v] {
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return false
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}
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}
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return true
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}
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Loading…
Reference in New Issue