mirror of
https://github.com/superseriousbusiness/gotosocial.git
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263 lines
6.2 KiB
Go
263 lines
6.2 KiB
Go
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package pgproto3
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import (
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"bytes"
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"encoding/binary"
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"fmt"
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"io"
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)
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// Backend acts as a server for the PostgreSQL wire protocol version 3.
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type Backend struct {
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cr *chunkReader
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w io.Writer
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// tracer is used to trace messages when Send or Receive is called. This means an outbound message is traced
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// before it is actually transmitted (i.e. before Flush).
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tracer *tracer
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wbuf []byte
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// Frontend message flyweights
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bind Bind
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cancelRequest CancelRequest
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_close Close
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copyFail CopyFail
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copyData CopyData
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copyDone CopyDone
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describe Describe
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execute Execute
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flush Flush
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functionCall FunctionCall
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gssEncRequest GSSEncRequest
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parse Parse
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query Query
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sslRequest SSLRequest
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startupMessage StartupMessage
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sync Sync
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terminate Terminate
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bodyLen int
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msgType byte
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partialMsg bool
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authType uint32
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}
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const (
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minStartupPacketLen = 4 // minStartupPacketLen is a single 32-bit int version or code.
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maxStartupPacketLen = 10000 // maxStartupPacketLen is MAX_STARTUP_PACKET_LENGTH from PG source.
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)
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// NewBackend creates a new Backend.
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func NewBackend(r io.Reader, w io.Writer) *Backend {
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cr := newChunkReader(r, 0)
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return &Backend{cr: cr, w: w}
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}
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// Send sends a message to the frontend (i.e. the client). The message is not guaranteed to be written until Flush is
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// called.
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func (b *Backend) Send(msg BackendMessage) {
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prevLen := len(b.wbuf)
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b.wbuf = msg.Encode(b.wbuf)
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if b.tracer != nil {
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b.tracer.traceMessage('B', int32(len(b.wbuf)-prevLen), msg)
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}
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}
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// Flush writes any pending messages to the frontend (i.e. the client).
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func (b *Backend) Flush() error {
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n, err := b.w.Write(b.wbuf)
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const maxLen = 1024
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if len(b.wbuf) > maxLen {
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b.wbuf = make([]byte, 0, maxLen)
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} else {
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b.wbuf = b.wbuf[:0]
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}
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if err != nil {
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return &writeError{err: err, safeToRetry: n == 0}
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}
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return nil
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}
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// Trace starts tracing the message traffic to w. It writes in a similar format to that produced by the libpq function
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// PQtrace.
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func (b *Backend) Trace(w io.Writer, options TracerOptions) {
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b.tracer = &tracer{
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w: w,
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buf: &bytes.Buffer{},
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TracerOptions: options,
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}
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}
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// Untrace stops tracing.
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func (b *Backend) Untrace() {
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b.tracer = nil
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}
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// ReceiveStartupMessage receives the initial connection message. This method is used of the normal Receive method
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// because the initial connection message is "special" and does not include the message type as the first byte. This
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// will return either a StartupMessage, SSLRequest, GSSEncRequest, or CancelRequest.
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func (b *Backend) ReceiveStartupMessage() (FrontendMessage, error) {
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buf, err := b.cr.Next(4)
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if err != nil {
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return nil, err
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}
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msgSize := int(binary.BigEndian.Uint32(buf) - 4)
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if msgSize < minStartupPacketLen || msgSize > maxStartupPacketLen {
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return nil, fmt.Errorf("invalid length of startup packet: %d", msgSize)
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}
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buf, err = b.cr.Next(msgSize)
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if err != nil {
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return nil, translateEOFtoErrUnexpectedEOF(err)
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}
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code := binary.BigEndian.Uint32(buf)
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switch code {
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case ProtocolVersionNumber:
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err = b.startupMessage.Decode(buf)
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if err != nil {
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return nil, err
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}
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return &b.startupMessage, nil
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case sslRequestNumber:
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err = b.sslRequest.Decode(buf)
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if err != nil {
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return nil, err
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}
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return &b.sslRequest, nil
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case cancelRequestCode:
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err = b.cancelRequest.Decode(buf)
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if err != nil {
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return nil, err
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}
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return &b.cancelRequest, nil
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case gssEncReqNumber:
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err = b.gssEncRequest.Decode(buf)
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if err != nil {
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return nil, err
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}
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return &b.gssEncRequest, nil
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default:
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return nil, fmt.Errorf("unknown startup message code: %d", code)
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}
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}
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// Receive receives a message from the frontend. The returned message is only valid until the next call to Receive.
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func (b *Backend) Receive() (FrontendMessage, error) {
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if !b.partialMsg {
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header, err := b.cr.Next(5)
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if err != nil {
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return nil, translateEOFtoErrUnexpectedEOF(err)
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}
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b.msgType = header[0]
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b.bodyLen = int(binary.BigEndian.Uint32(header[1:])) - 4
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b.partialMsg = true
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}
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var msg FrontendMessage
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switch b.msgType {
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case 'B':
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msg = &b.bind
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case 'C':
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msg = &b._close
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case 'D':
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msg = &b.describe
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case 'E':
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msg = &b.execute
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case 'F':
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msg = &b.functionCall
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case 'f':
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msg = &b.copyFail
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case 'd':
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msg = &b.copyData
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case 'c':
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msg = &b.copyDone
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case 'H':
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msg = &b.flush
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case 'P':
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msg = &b.parse
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case 'p':
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switch b.authType {
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case AuthTypeSASL:
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msg = &SASLInitialResponse{}
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case AuthTypeSASLContinue:
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msg = &SASLResponse{}
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case AuthTypeSASLFinal:
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msg = &SASLResponse{}
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case AuthTypeGSS, AuthTypeGSSCont:
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msg = &GSSResponse{}
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case AuthTypeCleartextPassword, AuthTypeMD5Password:
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fallthrough
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default:
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// to maintain backwards compatibility
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msg = &PasswordMessage{}
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}
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case 'Q':
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msg = &b.query
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case 'S':
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msg = &b.sync
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case 'X':
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msg = &b.terminate
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default:
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return nil, fmt.Errorf("unknown message type: %c", b.msgType)
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}
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msgBody, err := b.cr.Next(b.bodyLen)
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if err != nil {
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return nil, translateEOFtoErrUnexpectedEOF(err)
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}
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b.partialMsg = false
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err = msg.Decode(msgBody)
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if err != nil {
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return nil, err
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}
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if b.tracer != nil {
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b.tracer.traceMessage('F', int32(5+len(msgBody)), msg)
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}
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return msg, nil
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}
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// SetAuthType sets the authentication type in the backend.
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// Since multiple message types can start with 'p', SetAuthType allows
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// contextual identification of FrontendMessages. For example, in the
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// PG message flow documentation for PasswordMessage:
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//
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// Byte1('p')
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//
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// Identifies the message as a password response. Note that this is also used for
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// GSSAPI, SSPI and SASL response messages. The exact message type can be deduced from
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// the context.
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//
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// Since the Frontend does not know about the state of a backend, it is important
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// to call SetAuthType() after an authentication request is received by the Frontend.
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func (b *Backend) SetAuthType(authType uint32) error {
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switch authType {
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case AuthTypeOk,
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AuthTypeCleartextPassword,
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AuthTypeMD5Password,
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AuthTypeSCMCreds,
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AuthTypeGSS,
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AuthTypeGSSCont,
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AuthTypeSSPI,
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AuthTypeSASL,
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AuthTypeSASLContinue,
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AuthTypeSASLFinal:
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b.authType = authType
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default:
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return fmt.Errorf("authType not recognized: %d", authType)
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}
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return nil
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}
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