Feature(Go): Screen frame relay end-to-end with graceful client BYE (Phase 4)
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@@ -2,6 +2,9 @@ package web
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import (
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"encoding/json"
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"github.com/yuanyuanxiang/SimpleRemoter/server/go/hub"
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"github.com/yuanyuanxiang/SimpleRemoter/server/go/protocol"
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)
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// dispatch routes one inbound message to its handler. The `raw` payload is
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@@ -21,12 +24,10 @@ func (h *wsHub) dispatch(c *wsClient, cmd string, raw []byte) {
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case "ping":
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// no-op heartbeat; the read itself was the keep-alive signal
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case "disconnect":
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c.queue([]byte(`{"cmd":"disconnect_result","ok":true}`))
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h.handleDisconnect(c, raw)
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// Reserved for later phases. Reply with a benign failure so the UI can
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// surface a clear error instead of spinning indefinitely.
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case "connect":
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h.replyNotImplemented(c, "connect_result", "Screen sharing not yet implemented on Go server")
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h.handleConnect(c, raw)
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case "rdp_reset":
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// silently ignored — UI uses this as a fire-and-forget
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case "mouse", "key":
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@@ -116,6 +117,125 @@ func (h *wsHub) handleLogin(c *wsClient, raw []byte) {
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}))
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}
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// handleConnect kicks off a screen-sharing session for the browser. We send
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// COMMAND_SCREEN_SPY to the device's main TCP connection; the device then
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// opens a new sub-connection (TOKEN_BITMAPINFO) which the TCP side binds to
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// the device via hub.BindScreenConn. Frame relay to the browser is handled
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// in Phase 4.2 once frames actually arrive.
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//
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// Reply semantics: returning connect_result.ok=true (without width/height)
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// triggers the browser's "Waiting for video..." spinner. We can't deliver
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// width/height here because we don't yet know them — they show up in the
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// first TOKEN_BITMAPINFO from the device.
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// handleDisconnect detaches this client from any device it was watching and
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// — if no other authenticated client is still watching — closes the device's
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// screen sub-connection. Closing the TCP sub-conn is the signal the C++
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// device firmware uses to stop screen capture, so this is how we ask the
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// device to free its encoder.
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func (h *wsHub) handleDisconnect(c *wsClient, _ []byte) {
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// Mirror handleConnect: take h.mu so event-handler readers
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// (OnResolutionChange/OnScreenFrame) get a consistent view of c.watching.
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h.mu.Lock()
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prev := c.watching
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c.watching = ""
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h.mu.Unlock()
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c.queue([]byte(`{"cmd":"disconnect_result","ok":true}`))
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if prev != "" && h.countWatchers(prev) == 0 {
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h.devices.CloseScreen(prev)
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}
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}
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// countWatchers returns how many authenticated clients still have their
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// `watching` field pointing at deviceID. Called from disconnect paths.
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func (h *wsHub) countWatchers(deviceID string) int {
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h.mu.RLock()
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defer h.mu.RUnlock()
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n := 0
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for c := range h.clients {
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if c.watching == deviceID {
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n++
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}
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}
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return n
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}
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func (h *wsHub) handleConnect(c *wsClient, raw []byte) {
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if !h.requireAuth(c, raw, "connect_result") {
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return
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}
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var in struct {
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ID string `json:"id"`
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}
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if err := json.Unmarshal(raw, &in); err != nil || in.ID == "" {
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c.queue(mustJSON(map[string]any{"cmd": "connect_result", "ok": false, "msg": "Bad request"}))
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return
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}
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// If a screen session is already live for this device (another browser
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// is already watching), reuse it: hand the new viewer the current
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// resolution and the most recent IDR keyframe so its decoder can start
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// rendering immediately, without waiting for the next IDR (~15 s).
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cache := h.devices.ScreenState(in.ID)
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if cache.Active {
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c.queue(mustJSON(map[string]any{
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"cmd": "connect_result", "ok": true,
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"width": cache.Width, "height": cache.Height,
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}))
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if len(cache.Keyframe) > 0 {
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c.queueBinary(cache.Keyframe)
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}
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h.mu.Lock()
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c.watching = in.ID
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h.mu.Unlock()
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return
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}
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// No active session — kick the device to start capturing. We send the
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// same 32-byte COMMAND_SCREEN_SPY payload the C++ WebService sends:
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// [0]=COMMAND_SCREEN_SPY, [1]=0 (GDI), [2]=ALGORITHM_H264, [3]=1 (multi-screen),
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// [4..31]=0.
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cmd := make([]byte, 32)
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cmd[0] = protocol.CommandScreenSpy
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cmd[2] = protocol.AlgorithmH264
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cmd[3] = 1
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// CRITICAL: bind c.watching BEFORE asking the device to start capturing.
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// On fast reconnects the device's screen sub-conn handshake completes in
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// <100 ms, so TOKEN_BITMAPINFO and even the first H264 frame can arrive
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// before this handler finishes — and the resolution_changed / frame
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// broadcasts in wsHub filter on c.watching. With the assignment after
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// SendToDevice the new viewer silently misses the very first IDR and
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// resolution_changed, leaving the page stuck on "Waiting for video".
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//
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// The write needs to share the lock event handlers use to read c.watching
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// (they iterate h.clients under h.mu.RLock). Without that the write is a
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// data race; on a fast reconnect the reader goroutine can keep observing
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// the previous value ("") long enough to drop the first resolution_changed
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// and the first IDR, which produces the exact "every other quick reconnect
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// goes black" symptom — the C++ server avoids it because it does the same
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// state mutation under std::mutex and reaps the memory-barrier as a bonus.
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h.mu.Lock()
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c.watching = in.ID
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h.mu.Unlock()
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if err := h.devices.SendToDevice(in.ID, cmd); err != nil {
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// Roll back the watching flag if we never managed to kick capture.
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h.mu.Lock()
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c.watching = ""
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h.mu.Unlock()
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msg := "Device offline"
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if err != hub.ErrDeviceOffline {
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msg = "Failed to start screen capture"
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h.log.Error("SendToDevice(%s): %v", in.ID, err)
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}
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c.queue(mustJSON(map[string]any{"cmd": "connect_result", "ok": false, "msg": msg}))
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return
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}
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h.log.Info("[timing] COMMAND_SCREEN_SPY sent to device=%s (cold start)", in.ID)
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c.queue(mustJSON(map[string]any{"cmd": "connect_result", "ok": true}))
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}
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func (h *wsHub) handleGetDevices(c *wsClient, raw []byte) {
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if !h.requireAuth(c, raw, "device_list") {
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return
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