dns/client.go

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package dns
// A concurrent client implementation.
// Client sends query to a channel which
// will then handle the query. Returned replys
// are return on another channel. Ready for handling --- same
// setup for server - a HANDLER function that gets run
// when the query returns.
import (
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"io"
"net"
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"time"
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)
// Check incoming TSIG message. TODO(mg)
// Need a tsigstatus for that too? Don't know yet. TODO(mg)
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// Incoming (just as in os.Signal)
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type QueryHandler interface {
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QueryDNS(w RequestWriter, q *Msg)
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}
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// The RequestWriter interface is used by a DNS query handler to
// construct a DNS request.
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type RequestWriter interface {
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// Write returns the request message and the reply back to the client.
Write(*Msg) error
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// Send sends the message to the server.
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Send(*Msg) error
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// Receive waits for the reply of the servers.
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Receive() (*Msg, error)
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// Close closes the connection with the server.
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Close() error
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// Dials calls the server
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Dial() error
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// TsigStatus return the TSIG validation status.
TsigStatus() error
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}
// hijacked connections...?
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type reply struct {
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client *Client
addr string
req *Msg
conn net.Conn
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tsigRequestMAC string
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tsigTimersOnly bool
tsigStatus error
}
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// A Request is a incoming message from a Client.
type Request struct {
Request *Msg
Addr string
Client *Client
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}
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// QueryMux is an DNS request multiplexer. It matches the
// zone name of each incoming request against a list of
// registered patterns add calls the handler for the pattern
// that most closely matches the zone name.
type QueryMux struct {
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m map[string]QueryHandler
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}
// NewQueryMux allocates and returns a new QueryMux.
func NewQueryMux() *QueryMux { return &QueryMux{make(map[string]QueryHandler)} }
// DefaultQueryMux is the default QueryMux used by Query.
var DefaultQueryMux = NewQueryMux()
func newQueryChanSlice() chan *Exchange { return make(chan *Exchange) }
func newQueryChan() chan *Request { return make(chan *Request) }
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// Default channels to use for the resolver
var (
// DefaultReplyChan is the channel on which the replies are
// coming back. Is it a channel of *Exchange, so that the original
// question is included with the answer.
DefaultReplyChan = newQueryChanSlice()
// DefaultQueryChan is the channel were you can send the questions to.
DefaultQueryChan = newQueryChan()
)
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// The HandlerQueryFunc type is an adapter to allow the use of
// ordinary functions as DNS query handlers. If f is a function
// with the appropriate signature, HandlerQueryFunc(f) is a
// QueryHandler object that calls f.
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type HandlerQueryFunc func(RequestWriter, *Msg)
// QueryDNS calls f(w, reg)
func (f HandlerQueryFunc) QueryDNS(w RequestWriter, r *Msg) {
go f(w, r)
}
// HandleQueryFunc registers the handler with the given pattern in the
// DefaultQueryMux.
func HandleQueryFunc(pattern string, handler func(RequestWriter, *Msg)) {
DefaultQueryMux.HandleFunc(pattern, handler)
}
// HandleQuery registers the handler
// in the DefaultQueryMux
func HandleQuery(pattern string, handler HandlerQueryFunc) {
DefaultQueryMux.Handle(pattern, handler)
}
// HandleQueryRemove deregisters the handle with the given pattern
// in the DefaultQueryMux.
func HandleQueryRemove(pattern string) {
DefaultQueryMux.HandleRemove(pattern)
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}
// reusing zoneMatch from server.go
func (mux *QueryMux) match(zone string) QueryHandler {
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var h QueryHandler
var n = 0
for k, v := range mux.m {
if !zoneMatch(k, zone) {
continue
}
if h == nil || len(k) > n {
n = len(k)
h = v
}
}
return h
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}
func (mux *QueryMux) Handle(pattern string, handler QueryHandler) {
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if pattern == "" {
panic("dns: invalid pattern " + pattern)
}
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mux.m[pattern] = handler
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}
// HandleRemove deregisters the handler with given pattern.
func (mux *QueryMux) HandleRemove(pattern string) {
delete(mux.m, pattern)
}
// HandleFunc ...
func (mux *QueryMux) HandleFunc(pattern string, handler func(RequestWriter, *Msg)) {
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mux.Handle(pattern, HandlerQueryFunc(handler))
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}
func (mux *QueryMux) QueryDNS(w RequestWriter, r *Msg) {
h := mux.match(r.Question[0].Name)
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if h == nil {
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panic("dns: no handler found for " + r.Question[0].Name)
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}
h.QueryDNS(w, r)
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}
type Client struct {
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Net string // if "tcp" a TCP query will be initiated, otherwise an UDP one
Attempts int // number of attempts
Retry bool // retry with TCP
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QueryChan chan *Request // read DNS request from this channel
ReplyChan chan *Exchange // write the reply (together with the DNS request) to this channel
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ReadTimeout time.Duration // the net.Conn.SetReadTimeout value for new connections (ns)
WriteTimeout time.Duration // the net.Conn.SetWriteTimeout value for new connections (ns)
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TsigSecret map[string]string // secret(s) for Tsig map[<zonename>]<base64 secret>
Hijacked net.Conn // if set the calling code takes care of the connection
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// LocalAddr string // Local address to use
}
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// NewClient creates a new client, with Net set to "udp" and Attempts to 1.
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// The client's ReplyChan is set to DefaultReplyChan and QueryChan
// to DefaultQueryChan.
func NewClient() *Client {
c := new(Client)
c.Net = "udp"
c.Attempts = 1
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c.ReplyChan = DefaultReplyChan
c.QueryChan = DefaultQueryChan
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c.ReadTimeout = 2 * 1e9
c.WriteTimeout = 2 * 1e9
return c
}
type Query struct {
QueryChan chan *Request // read DNS request from this channel
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Handler QueryHandler // handler to invoke, dns.DefaultQueryMux if nil
}
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func (q *Query) Query() error {
handler := q.Handler
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if handler == nil {
handler = DefaultQueryMux
}
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//forever:
for {
select {
case in := <-q.QueryChan:
w := new(reply)
w.req = in.Request
w.addr = in.Addr
w.client = in.Client
handler.QueryDNS(w, in.Request)
}
}
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return nil
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}
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func (q *Query) ListenAndQuery() error {
if q.QueryChan == nil {
q.QueryChan = DefaultQueryChan
}
return q.Query()
}
// ListenAndQuery starts the listener for firing off the queries. If
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// c is nil DefaultQueryChan is used. If handler is nil
// DefaultQueryMux is used.
func ListenAndQuery(request chan *Request, handler QueryHandler) {
q := &Query{QueryChan: request, Handler: handler}
go q.ListenAndQuery()
}
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// Write returns the original question and the answer on the
// reply channel of the client.
func (w *reply) Write(m *Msg) error {
w.Client().ReplyChan <- &Exchange{Request: w.req, Reply: m}
return nil
}
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// Do performs an asynchronous query. The result is returned on the
// QueryChan channel set in the Client c.
func (c *Client) Do(m *Msg, a string) {
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c.QueryChan <- &Request{Client: c, Addr: a, Request: m}
}
// ExchangeBuffer performs a synchronous query. It sends the buffer m to the
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// address contained in a.
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func (c *Client) ExchangeBuffer(inbuf []byte, a string, outbuf []byte) (n int, err error) {
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w := new(reply)
w.client = c
w.addr = a
if c.Hijacked == nil {
if err = w.Dial(); err != nil {
return 0, err
}
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defer w.Close()
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}
if c.Hijacked != nil {
w.conn = c.Hijacked
}
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if n, err = w.writeClient(inbuf); err != nil {
return 0, err
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}
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if n, err = w.readClient(outbuf); err != nil {
return n, err
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}
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return n, nil
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}
// Exchange performs an synchronous query. It sends the message m to the address
// contained in a and waits for an reply.
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func (c *Client) Exchange(m *Msg, a string) (r *Msg, err error) {
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var n int
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out, ok := m.Pack()
if !ok {
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return nil, ErrPack
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}
var in []byte
switch c.Net {
case "tcp":
in = make([]byte, MaxMsgSize)
case "udp":
size := UDPMsgSize
for _, r := range m.Extra {
if r.Header().Rrtype == TypeOPT {
size = int(r.(*RR_OPT).UDPSize())
}
}
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in = make([]byte, size)
}
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if n, err = c.ExchangeBuffer(out, a, in); err != nil {
return nil, err
}
r = new(Msg)
if ok := r.Unpack(in[:n]); !ok {
return nil, ErrUnpack
}
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return r, nil
}
// Dial connects to the address addr for the network set in c.Net
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func (w *reply) Dial() error {
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conn, err := net.Dial(w.Client().Net, w.addr)
if err != nil {
return err
}
w.conn = conn
return nil
}
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func (w *reply) Close() (err error) {
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return w.conn.Close()
}
func (w *reply) Client() *Client {
return w.client
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}
func (w *reply) Request() *Msg {
return w.req
}
func (w *reply) TsigStatus() error {
return w.tsigStatus
}
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func (w *reply) Receive() (*Msg, error) {
var p []byte
m := new(Msg)
switch w.Client().Net {
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case "tcp", "tcp4", "tcp6":
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p = make([]byte, MaxMsgSize)
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case "udp", "udp4", "udp6":
p = make([]byte, DefaultMsgSize)
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}
n, err := w.readClient(p)
if err != nil {
return nil, err
}
p = p[:n]
if ok := m.Unpack(p); !ok {
return nil, ErrUnpack
}
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if m.IsTsig() {
secret := m.Extra[len(m.Extra)-1].(*RR_TSIG).Hdr.Name
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if _, ok := w.Client().TsigSecret[secret]; !ok {
w.tsigStatus = ErrSecret
return m, nil
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}
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// Need to work on the original message p, as that was used to calculate the tsig.
w.tsigStatus = TsigVerify(p, w.Client().TsigSecret[secret], w.tsigRequestMAC, w.tsigTimersOnly)
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}
return m, nil
}
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func (w *reply) readClient(p []byte) (n int, err error) {
if w.conn == nil {
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return 0, ErrConnEmpty
}
switch w.Client().Net {
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case "tcp", "tcp4", "tcp6":
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if len(p) < 1 {
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return 0, io.ErrShortBuffer
}
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for a := 0; a < w.Client().Attempts; a++ {
w.conn.SetReadDeadline(time.Now().Add(w.Client().ReadTimeout))
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w.conn.SetWriteDeadline(time.Now().Add(w.Client().WriteTimeout))
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n, err = w.conn.(*net.TCPConn).Read(p[0:2])
if err != nil || n != 2 {
if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
return n, err
}
l, _ := unpackUint16(p[0:2], 0)
if l == 0 {
return 0, ErrShortRead
}
if int(l) > len(p) {
return int(l), io.ErrShortBuffer
}
n, err = w.conn.(*net.TCPConn).Read(p[:l])
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if err != nil {
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if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
return n, err
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}
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i := n
for i < int(l) {
j, err := w.conn.(*net.TCPConn).Read(p[i:int(l)])
if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
// We are half way in our read...
continue
}
return i, err
}
i += j
}
n = i
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}
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case "udp", "udp4", "udp6":
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for a := 0; a < w.Client().Attempts; a++ {
w.conn.SetReadDeadline(time.Now().Add(w.Client().ReadTimeout))
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w.conn.SetWriteDeadline(time.Now().Add(w.Client().ReadTimeout))
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n, _, err = w.conn.(*net.UDPConn).ReadFromUDP(p)
if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
return n, err
}
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}
}
return
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}
// Send sends a dns msg to the address specified in w.
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// If the message m contains a TSIG record the transaction
// signature is calculated.
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func (w *reply) Send(m *Msg) (err error) {
var out []byte
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if m.IsTsig() {
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mac := ""
name := m.Extra[len(m.Extra)-1].(*RR_TSIG).Hdr.Name
if _, ok := w.Client().TsigSecret[name]; !ok {
return ErrSecret
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}
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out, mac, err = TsigGenerate(m, w.Client().TsigSecret[name], w.tsigRequestMAC, w.tsigTimersOnly)
if err != nil {
return err
}
w.tsigRequestMAC = mac
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} else {
ok := false
out, ok = m.Pack()
if !ok {
return ErrPack
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}
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}
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if _, err = w.writeClient(out); err != nil {
return err
}
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return nil
}
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func (w *reply) writeClient(p []byte) (n int, err error) {
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if w.Client().Attempts == 0 {
panic("c.Attempts 0")
}
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if w.Client().Net == "" {
panic("c.Net empty")
}
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if w.Client().Hijacked == nil {
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if err = w.Dial(); err != nil {
return 0, err
}
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}
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switch w.Client().Net {
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case "tcp", "tcp4", "tcp6":
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if len(p) < 2 {
return 0, io.ErrShortBuffer
}
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for a := 0; a < w.Client().Attempts; a++ {
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w.conn.SetWriteDeadline(time.Now().Add(w.Client().WriteTimeout))
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w.conn.SetReadDeadline(time.Now().Add(w.Client().ReadTimeout))
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a, b := packUint16(uint16(len(p)))
n, err = w.conn.Write([]byte{a, b})
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if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
return n, err
}
if n != 2 {
return n, io.ErrShortWrite
}
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n, err = w.conn.Write(p)
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if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
return n, err
}
i := n
if i < len(p) {
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j, err := w.conn.Write(p[i:len(p)])
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if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
// We are half way in our write...
continue
}
return i, err
}
i += j
}
n = i
}
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case "udp", "udp4", "udp6":
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for a := 0; a < w.Client().Attempts; a++ {
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w.conn.SetWriteDeadline(time.Now().Add(w.Client().WriteTimeout))
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w.conn.SetReadDeadline(time.Now().Add(w.Client().ReadTimeout))
n, err = w.conn.(*net.UDPConn).Write(p)
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if err != nil {
if e, ok := err.(net.Error); ok && e.Timeout() {
continue
}
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return n, err
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}
}
}
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return
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}