The runtime is JSPI-only; this removes everything that still pretended otherwise. Three exhaustive sweeps (C++/JS+build+CI/tests+docs) drove the inventory; every deletion verified by grep closure + full gates. Broken-right-now fixes: - deploy-staging.yml passed the retired opt_level input — the workflow could not even start. Removed. - env.sh carried dead exports with a live -sASYNCIFY=1 inside (WASM_LDFLAGS/PTHREAD_LDFLAGS, zero consumers). Removed; the WASM_LEGACY_EXCEPTIONS rationale rewritten to the real reason. - docker/build.sh exported PCBJAM_ASYNC_BACKEND (read nowhere). Gone. Dead weight removed: - binaryen submodule (nothing builds or invokes it), wasm-opt-bench workflow + scripts/bench/, get-wasm-opt.sh, diagnostics.js (242 lines of Asyncify-API-only code), the KICAD_PIPELINE background-postprocess scaffolding (existed to parallelize the deleted wasm-opt phase; the postprocess is a seconds-long node script and now runs inline), build-monitor's dead asyncify rows, sched-context orphan build output, dead .gitignore entries, the .jspi-assets spike dir (the two wf-result research JSONs moved to docs/features/async/migration-evidence/). - bindings: fiber_park.h + its 12 embind registrations (broken-if- called under JSPI), the kicadOpenFileStart/OPEN_JOB starter route, main_stack_runner.h + 5 includes, the always-null context-sleep weak hook in nanosleep_yield.c. - shim: the backend field (installed-flag idempotency instead), noteContextWait (dead both sides), the __wxAsyncifyDump alias (+ the WasmTool fallback and string-dump normalize branch). - web: the emscripten-6-ignored mainScriptUrlOrBlob option in boot.ts (gerber-demo keeps it: it loads the deployed CDN release, which predates emscripten 6 — noted inline). Conditionals: all 'backend === jspi' checks reduced to scheduler- presence checks; races_quiescent re-keyed from Asyncify.state (vacuous) to real backlog quiescence (resumeReady/mutatorQueue — NOT _windowLive, which is the probing activation's own window by definition). Renames (identifiers only, no file renames): ASYNC_LINK_FLAGS→ JSPI_LINK_FLAGS and Makefile ASYNC_LDFLAGS→JSPI_LDFLAGS, kicadCollabFiberBusy→kicadCollabBusy (embind + web + tests), collab_common.h fiber*→apply*/coroutine naming, asyncifySignatures→ wasmTrapSignatures (lists byte-identical). Tests: the two remaining vacuous [wx-asyncify]/fiber-resume-refused asserts re-keyed to live JSPI beacons; eeschema-load's failure message no longer sends the developer to a deleted script; wait-beacons' dead families/parser deleted; lane-0 legacy-glue guards removed (lane 0 is unconstructible); the embind test.fail re-gated with the JSPI reason (plain embind invokers cannot suspend — verified still failing); lint-determinism now scans tests/jspi (166 files clean); eeschema-collab local-move gated to chromium (~50% flaky on FF even solo; pcbnew twin covers both engines). Docs: DEBUG.md rewritten as the JSPI debugging guide; build.md describes the single-phase build; docs/features/async/README.md banner-marked historical and repointed at the NEW 23-jspi-runtime.md (current architecture: export census, turnstile, libcontext ownership + refusal contract, embind call shapes, the em-pthread service-wrapper trick, exception policy, known gaps). Gates on the cleaned tree: test:e2e 725 passed / 0 failed (after the quiescence-probe fix; the 3 other reds were verified contention flakes solo-green or the documented FF gate), web 76/0, jspi 18/18 both engines, vitest 295/295 + 17/17, all lints green, live-app census clean. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_016X9eh1s5sTx1o9Em9KBuwR
225 lines
7.2 KiB
C++
225 lines
7.2 KiB
C++
/*
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* Shared plumbing for the per-editor collab binding TUs (eeschema_embind.cpp,
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* pcbnew_embind.cpp) — the frame-type-free half of the bridge: string/JSON
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* wire emitters to window.kicadCollab, the CallAfter+COROUTINE apply queue,
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* and the frame-generic test hooks. Header-only (the collab_presence_style.h
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* pattern), so the build script needs no extra objects and the merged
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* kicad_editor image links it without ODR issues.
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*/
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#pragma once
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#ifdef __EMSCRIPTEN__
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#include <deque>
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#include <emscripten.h>
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#include <functional>
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#include <string>
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#include <nlohmann/json.hpp>
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#include <wx/event.h>
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#include <wx/string.h>
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#include <eda_base_frame.h>
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#include <tool/actions.h>
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#include <tool/coroutine.h>
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#include <tool/tool_manager.h>
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namespace pcbjam_collab {
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inline std::string toUtf8( const wxString& s ) { return std::string( s.utf8_str() ); }
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/**
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* Run a body on the editor's main loop AND inside a COROUTINE — the exact
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* context native tool edits run in. CallAfter queues onto the app's
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* pending-event list (drained every frame by the wasm main loop,
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* src/wasm/evtloop.cpp); COROUTINE::Call moves the body onto its own
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* coroutine stack. Commits, GAL overlay work and the s-expr formatters run
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* through this.
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*
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* SERIALIZED (drift-trio finding #10, standalone-hardening 0008 §10): bodies
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* run strictly one-at-a-time through a FIFO. A body that SUSPENDS (a JSPI
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* suspension inside commit.Push — connectivity/GAL work) returns early from
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* COROUTINE::Call while its coroutine is still in flight. Without the queue
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* the main loop kept draining pending events and started the NEXT body — a
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* local commit and a remote apply then ran interleaved on shared
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* commit/listener state (s_applyingRemote is a single global), silently
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* losing applies on the actively-editing receiver and, in the worst case,
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* corrupting memory (fuzz S10: wasm OOB on an observer). The busy flag is
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* suspension-safe: while a suspended body is in flight every other drain
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* invocation no-ops on the flag, and the body's own coroutine tail
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* re-schedules the drain when it completes.
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*/
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inline std::deque<std::function<void()>>& applyQueue()
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{
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static std::deque<std::function<void()>> q;
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return q;
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}
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inline bool& applyBusy()
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{
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static bool busy = false;
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return busy;
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}
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/* The in-flight body. HEAP-allocated and pinned for the body's whole life:
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* when a body SUSPENDS (a JSPI suspension inside commit.Push), COROUTINE::Call
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* RETURNS EARLY — the later resume re-enters the coroutine through the SAME
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* callable at the SAME addresses. Stack-local cor/body (the original
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* runOnCoroutine AND the first serialized version) were destroyed on that
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* early return, so the resume ran through freed objects — memory corruption
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* downstream (finding #10b's symbolized stack). `done` is the ONLY completion
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* signal; Call() returning is not. */
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struct ApplySlot
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{
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COROUTINE<int, int>* cor = nullptr;
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std::function<void()>* body = nullptr;
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bool done = false;
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};
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inline ApplySlot& activeApplySlot()
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{
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static ApplySlot s;
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return s;
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}
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inline wxEvtHandler*& applyHandler()
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{
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static wxEvtHandler* h = nullptr;
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return h;
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}
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inline void drainApplies();
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inline void reapApply()
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{
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ApplySlot& slot = activeApplySlot();
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delete slot.cor;
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delete slot.body;
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slot.cor = nullptr;
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slot.body = nullptr;
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slot.done = false;
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applyBusy() = false;
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}
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inline void drainApplies()
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{
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ApplySlot& slot = activeApplySlot();
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if( applyBusy() )
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{
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if( !slot.done )
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return; // suspended body still in flight — its tail re-drains
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reapApply(); // completed since the last drain
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}
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auto& q = applyQueue();
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while( !q.empty() )
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{
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applyBusy() = true;
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slot.done = false;
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slot.body = new std::function<void()>( std::move( q.front() ) );
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q.pop_front();
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slot.cor = new COROUTINE<int, int>( []( int ) -> int
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{
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ApplySlot& sl = activeApplySlot();
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( *sl.body )();
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sl.done = true;
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// If we suspended, no drain is pending by the time the body
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// completes — schedule the reap + next body from the coroutine
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// tail (CallAfter only queues; safe here).
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if( wxEvtHandler* h = applyHandler() )
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h->CallAfter( []() { drainApplies(); } );
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return 0;
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} );
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slot.cor->Call( 0 );
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if( !slot.done )
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return; // suspended — cor/body stay pinned for the resume
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reapApply();
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}
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}
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inline void runOnCoroutine( wxEvtHandler* aHandler, std::function<void()> aBody )
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{
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applyHandler() = aHandler;
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applyQueue().push_back( std::move( aBody ) );
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aHandler->CallAfter( []() { drainApplies(); } );
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}
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// ── C++ → JS wire emitters (no-ops without a JS listener) ───────────────────
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/** Legacy scalar delta wire: window.kicadCollab.onDelta. */
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inline void emitDelta( const nlohmann::json& aDelta )
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{
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std::string s = aDelta.dump();
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EM_ASM( {
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if( window.kicadCollab && window.kicadCollab.onDelta )
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window.kicadCollab.onDelta( UTF8ToString( $0 ) );
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}, s.c_str() );
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}
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/** v2 per-item s-expr blob wire (ysync 0008): window.kicadCollab.onItems. */
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inline void emitItemsWire( const nlohmann::json& aWire )
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{
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std::string s = aWire.dump();
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EM_ASM( {
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if( window.kicadCollab && window.kicadCollab.onItems )
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window.kicadCollab.onItems( UTF8ToString( $0 ) );
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}, s.c_str() );
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}
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/** Local cursor position (presence): window.kicadCollab.onCursor. */
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inline void emitCursor( double aX, double aY, bool aActive )
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{
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EM_ASM( {
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if( window.kicadCollab && window.kicadCollab.onCursor )
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window.kicadCollab.onCursor( $0, $1, $2 );
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}, aX, aY, aActive ? 1 : 0 );
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}
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/** Local selection payload (presence): window.kicadCollab.onSelection. */
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inline void emitSelection( const std::string& aJson )
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{
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EM_ASM( {
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if( window.kicadCollab && window.kicadCollab.onSelection )
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window.kicadCollab.onSelection( UTF8ToString( $0 ) );
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}, aJson.c_str() );
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}
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/** Viewport transform for the DOM layers (0005): window.kicadCollab.onViewport. */
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inline void emitViewport( double aCx, double aCy, double aPxPerIu, int aW, int aH )
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{
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EM_ASM( {
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if( window.kicadCollab && window.kicadCollab.onViewport )
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window.kicadCollab.onViewport( $0, $1, $2, $3, $4 );
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}, aCx, aCy, aPxPerIu, aW, aH );
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}
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// ── frame-generic test hooks (ysync miss 09) ────────────────────────────────
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/** Run Edit>Undo exactly like the UI would (main loop + apply coroutine) —
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* exercises the local-ops-only undo policy and the stale-picker UUID guard. */
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inline bool testUndo( EDA_BASE_FRAME* aFrame )
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{
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if( !aFrame )
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return false;
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runOnCoroutine( aFrame, [aFrame]() { aFrame->GetToolManager()->RunAction( ACTIONS::undo ); } );
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return true;
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}
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/** Local undo stack depth — remote applies must not grow it (miss 09). */
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inline int testUndoDepth( EDA_BASE_FRAME* aFrame )
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{
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return aFrame ? aFrame->GetUndoCommandCount() : -1;
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}
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} // namespace pcbjam_collab
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#endif // __EMSCRIPTEN__
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