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Merge a1960c7ccb
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82fb75da9f
2 changed files with 157 additions and 5 deletions
112
common/utils/typed_sync_map.go
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112
common/utils/typed_sync_map.go
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@ -0,0 +1,112 @@
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package utils
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import (
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"sync"
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)
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// TypedSyncMap is a wrapper of sync.Map that provides type-safe for keys and values.
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// No need to use type assertions every time, so you can have more time to enjoy other things like GochiUsa
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// If sync.Map methods returned nil, it will return the zero value of the type V.
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type TypedSyncMap[K, V any] struct {
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syncMap *sync.Map
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}
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// NewTypedSyncMap creates a new TypedSyncMap
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// K is key type, V is value type
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// It is recommended to use pointer types for V because sync.Map might return nil
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// If sync.Map methods really returned nil, it will return the zero value of the type V
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func NewTypedSyncMap[K any, V any]() *TypedSyncMap[K, V] {
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return &TypedSyncMap[K, V]{
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syncMap: &sync.Map{},
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}
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}
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// Clear deletes all the entries, resulting in an empty Map.
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func (m *TypedSyncMap[K, V]) Clear() {
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m.syncMap.Clear()
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}
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// CompareAndDelete deletes the entry for key if its value is equal to old.
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// The old value must be of a comparable type.
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//
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// If there is no current value for key in the map, CompareAndDelete
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// returns false (even if the old value is the nil interface value).
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func (m *TypedSyncMap[K, V]) CompareAndDelete(key K, old V) (deleted bool) {
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return m.syncMap.CompareAndDelete(key, old)
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}
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// CompareAndSwap swaps the old and new values for key
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// if the value stored in the map is equal to old.
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// The old value must be of a comparable type.
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func (m *TypedSyncMap[K, V]) CompareAndSwap(key K, old V, new V) (swapped bool) {
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return m.syncMap.CompareAndSwap(key, old, new)
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}
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// Delete deletes the value for a key.
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func (m *TypedSyncMap[K, V]) Delete(key K) {
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m.syncMap.Delete(key)
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}
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// Load returns the value stored in the map for a key, or nil if no
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// value is present.
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// The ok result indicates whether value was found in the map.
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func (m *TypedSyncMap[K, V]) Load(key K) (value V, ok bool) {
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anyValue, ok := m.syncMap.Load(key)
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// anyValue might be nil
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if anyValue != nil {
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value = anyValue.(V)
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}
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return value, ok
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}
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// LoadAndDelete deletes the value for a key, returning the previous value if any.
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// The loaded result reports whether the key was present.
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func (m *TypedSyncMap[K, V]) LoadAndDelete(key K) (value V, loaded bool) {
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anyValue, loaded := m.syncMap.LoadAndDelete(key)
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if anyValue != nil {
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value = anyValue.(V)
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}
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return value, loaded
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}
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// LoadOrStore returns the existing value for the key if present.
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// Otherwise, it stores and returns the given value.
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// The loaded result is true if the value was loaded, false if stored.
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func (m *TypedSyncMap[K, V]) LoadOrStore(key K, value V) (actual V, loaded bool) {
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anyActual, loaded := m.syncMap.LoadOrStore(key, value)
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if anyActual != nil {
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actual = anyActual.(V)
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}
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return actual, loaded
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}
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// Range calls f sequentially for each key and value present in the map.
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// If f returns false, range stops the iteration.
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//
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// Range does not necessarily correspond to any consistent snapshot of the Map's
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// contents: no key will be visited more than once, but if the value for any key
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// is stored or deleted concurrently (including by f), Range may reflect any
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// mapping for that key from any point during the Range call. Range does not
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// block other methods on the receiver; even f itself may call any method on m.
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//
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// Range may be O(N) with the number of elements in the map even if f returns
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// false after a constant number of calls.
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func (m *TypedSyncMap[K, V]) Range(f func(key K, value V) bool) {
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m.syncMap.Range(func(key, value any) bool {
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return f(key.(K), value.(V))
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})
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}
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// Store sets the value for a key.
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func (m *TypedSyncMap[K, V]) Store(key K, value V) {
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m.syncMap.Store(key, value)
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}
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// Swap swaps the value for a key and returns the previous value if any. The loaded result reports whether the key was present.
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func (m *TypedSyncMap[K, V]) Swap(key K, value V) (previous V, loaded bool) {
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anyPrevious, loaded := m.syncMap.Swap(key, value)
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if anyPrevious != nil {
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previous = anyPrevious.(V)
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}
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return previous, loaded
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}
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@ -18,6 +18,7 @@ import (
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"github.com/xtls/xray-core/common/session"
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"github.com/xtls/xray-core/common/signal"
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"github.com/xtls/xray-core/common/task"
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"github.com/xtls/xray-core/common/utils"
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"github.com/xtls/xray-core/core"
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"github.com/xtls/xray-core/features/dns"
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"github.com/xtls/xray-core/features/policy"
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@ -202,7 +203,7 @@ func (h *Handler) Process(ctx context.Context, link *transport.Link, dialer inte
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writer = buf.NewWriter(conn)
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}
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} else {
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writer = NewPacketWriter(conn, h, ctx, UDPOverride)
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writer = NewPacketWriter(conn, h, ctx, UDPOverride, destination)
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if h.config.Noises != nil {
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errors.LogDebug(ctx, "NOISE", h.config.Noises)
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writer = &NoisePacketWriter{
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@ -317,7 +318,8 @@ func (r *PacketReader) ReadMultiBuffer() (buf.MultiBuffer, error) {
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return buf.MultiBuffer{b}, nil
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}
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func NewPacketWriter(conn net.Conn, h *Handler, ctx context.Context, UDPOverride net.Destination) buf.Writer {
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// DialDest means the dial target used in the dialer when creating conn
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func NewPacketWriter(conn net.Conn, h *Handler, ctx context.Context, UDPOverride net.Destination, DialDest net.Destination) buf.Writer {
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iConn := conn
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statConn, ok := iConn.(*stat.CounterConnection)
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if ok {
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@ -328,12 +330,20 @@ func NewPacketWriter(conn net.Conn, h *Handler, ctx context.Context, UDPOverride
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counter = statConn.WriteCounter
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}
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if c, ok := iConn.(*internet.PacketConnWrapper); ok {
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// If DialDest is a domain, it will be resolved in dialer
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// check this behavior and add it to map
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resolvedUDPAddr := utils.NewTypedSyncMap[string, net.Address]()
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if DialDest.Address.Family().IsDomain() {
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RemoteAddress, _, _ := net.SplitHostPort(conn.RemoteAddr().String())
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resolvedUDPAddr.Store(DialDest.Address.String(), net.ParseAddress(RemoteAddress))
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}
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return &PacketWriter{
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PacketConnWrapper: c,
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Counter: counter,
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Handler: h,
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Context: ctx,
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UDPOverride: UDPOverride,
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resolvedUDPAddr: resolvedUDPAddr,
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}
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}
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@ -346,6 +356,12 @@ type PacketWriter struct {
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*Handler
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context.Context
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UDPOverride net.Destination
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// Dest of udp packets might be a domain, we will resolve them to IP
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// But resolver will return a random one if the domain has many IPs
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// Resulting in these packets being sent to many different IPs randomly
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// So, cache and keep the resolve result
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resolvedUDPAddr *utils.TypedSyncMap[string, net.Address]
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}
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func (w *PacketWriter) WriteMultiBuffer(mb buf.MultiBuffer) error {
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@ -364,10 +380,34 @@ func (w *PacketWriter) WriteMultiBuffer(mb buf.MultiBuffer) error {
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if w.UDPOverride.Port != 0 {
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b.UDP.Port = w.UDPOverride.Port
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}
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if w.Handler.config.hasStrategy() && b.UDP.Address.Family().IsDomain() {
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ip := w.Handler.resolveIP(w.Context, b.UDP.Address.Domain(), nil)
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if ip != nil {
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if b.UDP.Address.Family().IsDomain() {
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if ip, ok := w.resolvedUDPAddr.Load(b.UDP.Address.Domain()); ok {
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b.UDP.Address = ip
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} else {
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ShouldUseSystemResolver := true
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if w.Handler.config.hasStrategy() {
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ip = w.Handler.resolveIP(w.Context, b.UDP.Address.Domain(), nil)
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if ip != nil {
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ShouldUseSystemResolver = false
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}
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// drop packet if resolve failed when forceIP
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if ip == nil && w.Handler.config.forceIP() {
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b.Release()
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continue
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}
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}
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if ShouldUseSystemResolver {
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udpAddr, err := net.ResolveUDPAddr("udp", b.UDP.NetAddr())
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if err != nil {
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b.Release()
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continue
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} else {
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ip = net.IPAddress(udpAddr.IP)
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}
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}
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if ip != nil {
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b.UDP.Address, _ = w.resolvedUDPAddr.LoadOrStore(b.UDP.Address.Domain(), ip)
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}
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}
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}
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destAddr, _ := net.ResolveUDPAddr("udp", b.UDP.NetAddr())
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