ShapeText re-decoded UTF-8, re-looked-up every glyph, and recomputed
layout every frame for static strings (DrawText / EmitCenteredLabel run
inside per-frame onBuild). DrawText and EmitCenteredLabel also did a
second full pass over the glyphs to apply alignment.
Memoize the shaped run, keyed by (Font*, pxSize, color, utf8), as an
origin-relative vector<GlyphItem>. A cache hit skips decode/lookup/layout
and just translates the cached run into the output buffer by
(x + alignShift, baselineY). The alignment shift (Center = -advance/2,
Right = -advance) is folded into ShapeText's single pass, dropping the
second loop in both callers. TextAlign moves to the :UI partition so
ShapeText can take it.
Pure CPU memoization — the glyph buffer is fully rewritten and re-flushed
every frame, so a hit is byte-equivalent. A miss still calls Ensure so new
glyphs rasterise and dirty the atlas; hits don't (atlas entries are never
evicted). InvalidateFont drops a font's runs before it is destroyed (the
cache, like FontAtlas's glyph cache, keys on the Font pointer). A soft cap
bounds memory against pathological per-frame-unique text.
Adds the ShapeTextCache test (15 checks): hit == miss byte-for-byte, hits
don't touch the atlas, translate/alignment/truncation/InvalidateFont.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
FontAtlas::Update re-uploaded the entire 1024x1024 R8 atlas (1 MiB)
whenever a single glyph was rasterized, so warm-up / language-switch /
size-churn cost roughly one full-atlas copy per frame that added a
codepoint.
Accumulate a dirty bounding box (FontAtlas::DirtyRect) in MarkDirty as
glyphs are placed, and copy only that sub-rect. On Vulkan this is a new
ImageVulkan::UpdateRegion: the staging buffer keeps the full atlas row
stride, so bufferRowLength stays the atlas width and bufferOffset points
at the rect origin while imageOffset/imageExtent carve out the rect.
Layout transitions stay whole-image (cheap); only the copy extent
shrinks. WebGPU passes the rect straight to wgpuWriteAtlasRegion, which
already took x/y/w/h.
The freshly-zeroed atlas marks its whole extent dirty in Initialize so
the first Update clears the image once; thereafter every untouched texel
stays the zero it was uploaded as, keeping the image byte-identical to
the staging copy.
Tested: new FontAtlasDirtyRect unit test covers the accumulation /
clamp / lockstep-with-`dirty` math (no GPU needed); HelloUI renders text
correctly on both Vulkan (NVIDIA, validation-clean) and WebGPU.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The renderer was effectively single-buffered despite allocating
triple-buffered infrastructure: Render() ended with an unconditional
vkQueueWaitIdle, and a single (presentComplete, renderComplete)
semaphore pair with zero fences was shared for the Window's lifetime.
Rework the pacing model so up to numFrames frames overlap:
- Per-swapchain-image VkFence, signaled by the submit and waited+reset
before that image's command buffer / descriptor-heap slot is
re-recorded. Keyed by acquired image index (drawCmdBuffers, the heap
slots, and the swapchain images are all image-indexed — see
WriteSwapchainDescriptors). Created signaled so first use passes.
- Per-image render-finished (present) semaphore: the presentation engine
holds it until the image is re-acquired, so per-image is the only safe
key (per-CPU-frame trips VUID-vkQueueSubmit-pSignalSemaphores-00067).
- Per-CPU-frame acquire semaphores (image index unknown until acquire
returns), sized numFrames+1: in-flight depth is bounded by the
per-image fences, so numFrames+1 distinct acquire semaphores guarantee
the reused one has no pending op (VUID-vkAcquireNextImageKHR-01779).
- Drop the steady-state vkQueueWaitIdle; keep it on resize / OUT_OF_DATE
/ teardown.
Add tests/FrameLoopSync: drives the real frame loop against a live
Wayland compositor for 60 frames (>> in-flight slots) and asserts the
CPU frame counter advanced, the swapchain rotated across multiple
images, and the validation layer stayed silent — the load-bearing check,
since the old single-pair design only avoided being an active race
because the wait-idle masked it.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
fontTextureSlot/fontSamplerSlot are push constants, hence provably
dynamically uniform. Wrapping them in nonuniformEXT forced the
per-invocation divergent-descriptor path and blocked hoisting the
uniform descriptor load out of the per-pixel glyph loop.
Removing the decoration is zero correctness risk — it is purely a
read-index hint. Not applied to ui-images.comp.glsl, whose slots come
from an SSBO load the compiler cannot prove uniform.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
CreateSwapchain unconditionally used VK_PRESENT_MODE_FIFO_KHR, but still
ran two vkGetPhysicalDeviceSurfacePresentModesKHR calls plus a heap-allocated
std::vector to enumerate present modes that were never consulted. Delete
them and assign the constant directly.
compositeAlpha is a surface property that does not change across swapchain
recreation, so select it once at construction instead of re-deriving it
(with another heap-allocated vector) on every resize configure. The
vkQueueWaitIdle before recreation is left intact as required.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Render() rebuilt two VkBindHeapInfoEXT structs every frame and
recomputed reservedRangeOffset via a runtime subtract + bitmask
against Device::descriptorHeapProperties. The heap address/size per
slot are stable for a given heap; only currentBuffer varies.
Precompute numFrames resource/sampler bind structs and cache them,
keyed on the descriptorHeap pointer. The cache rebuilds whenever the
heap is (re)assigned and otherwise just indexes by currentBuffer.
Pointer-keyed invalidation catches any heap reassignment — the same
point a setter hook would fire — and is independent of onResize, as
the heaps never resize today (per the issue's correctness caveat).
Resolves#42
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Window::Render() rebuilt cmdBufInfo, the subresource range, both
VkImageMemoryBarrier structs, and presentInfo on the stack every frame
even though only the barriers' image (and the acquire barrier's
oldLayout) ever change. Hoist them to members initialised once in the
constructor; Render() now patches only the two varying fields.
presentInfo.pImageIndices/pSwapchains point at the currentBuffer and
swapChain members, so they track value changes (including swapchain
recreation) automatically. The render-complete wait semaphore is fixed
for the window's lifetime, so the per-frame `renderComplete != NULL`
check — set once, never cleared — was dead and is removed; the
semaphore is wired into presentInfo in the constructor instead.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Replace the std::vector<nanoseconds> frameTimes plus
erase(begin()) with a fixed-size std::array ring buffer (head +
count). The previous code memmoved ~99 elements left every frame once
the window filled. LogTiming computes order-independent sum/avg/min/max,
so the ring's write order is irrelevant to the reported stats.
Behind CRAFTER_TIMING only; shipping builds are unaffected.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A compute shader (aabbs.comp.{glsl,wgsl}) writes the procedural box into a
device buffer that BuildProcedural consumes by device address/handle with no
host copy; the WebGPU path also refits from it each frame so the box breathes.
Verified rendering on both Vulkan (native) and WebGPU (browser).
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Extend BLASBuildOptions with a device-local AABB buffer filled via a staging
copy + barrier (standing in for a GPU compute producer) fed into the new
device-address BuildProcedural/RefitProcedural. Asserts the build/refit
succeed, the in-place UPDATE keeps the AS handle + blasAddr, the host
aabbBuffer is never allocated (proof of zero-copy), and the validation layer
reports no errors.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Add zero-copy procedural BLAS overloads that take the AABB build input
straight from an existing device buffer instead of memcpy-ing a host span
through Mesh::aabbBuffer — the input-source companion to #36's refit work.
A GPU compute producer (e.g. a GPU-resident particle system) can now feed a
moving procedural BLAS that builds/refits each frame with no host round-trip.
Vulkan: new BuildProcedural(VkDeviceAddress, count, ...) and
RefitProcedural(VkDeviceAddress, count, ...) feed the device address directly
into VkAccelerationStructureGeometryAabbsDataKHR; the host-span path is
refactored to share RecordProceduralBuildFromAddress and is otherwise
unchanged.
WebGPU: device-buffer BuildProcedural/RefitProcedural copy the boxes GPU->GPU
into the mesh heap (new wgpuRegisterMeshBLASDeviceAabbs / wgpuRefitMeshBLAS-
DeviceAabbs bridge fns) and wrap them in a single root leaf bounded by a
caller-supplied worldBounds — no wasm round-trip, blasAddr stable across refit.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Exercises the real hardware AS-build path: builds and refits triangle
and procedural BLASes with fast-build/fast-trace + allow-update flags
via one-time command buffers, asserting the requested flags land, that
an allowUpdate refit keeps the same AS handle/blasAddr (in-place
UPDATE), that the no-update / topology-change fallback still produces a
valid BLAS, and that the validation layer reports zero errors.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Mesh::Build / BuildProcedural now take an RTBuildOptions { preference,
allowUpdate }. `preference` maps to PREFER_FAST_TRACE (default) or
PREFER_FAST_BUILD; `allowUpdate` sets ALLOW_UPDATE so the BLAS can be
refit later.
Adds Mesh::Refit / RefitProcedural: when the original build opted into
allowUpdate and the topology is unchanged, they record an in-place
UPDATE-mode build (src == dst) — much cheaper than a rebuild, and the
AS handle + blasAddr are preserved so TLAS instances stay valid. They
fall back to a full rebuild otherwise. The shared build tail also now
destroys a stale AS handle on re-Build (previously leaked) and guards
the in-place update with an AS read→write barrier.
The portable RTBuildPreference/RTBuildOptions types and Refit methods
also exist on the WebGPU backend for API symmetry; the software BVH has
no hardware AS, so the preference is a no-op and a "refit" rebuilds the
BVH (re-registering the handle).
Also adds Device::validationErrorCount, bumped by the debug-messenger
callback on ERROR-severity messages, so tests can assert a Vulkan
operation produced no validation errors.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Regression test for the procedural BLAS path: the same 3x3x3 grid of
unit-box AABBs runs through a PROCEDURAL_HIT_GROUP_KHR group whose GLSL
intersection shader (reportIntersectionEXT) turns each box into a
radius-1 sphere, the any-hit shader punches the spherical-checkerboard
cut-out (visible proof non-opaque geometry runs any-hit), and the
closest-hit shades per-instance tints — the WebGPU example behavior
reproduced natively. Fixed camera in raygen.glsl; the WebGPU/DOM path is
unchanged.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Adds the native counterpart of the WebGPU Mesh::BuildProcedural: uploads
the boxes as a 24-byte-stride VkAabbPositionsKHR-compatible device buffer
(AS-build-input read-only + device address) and builds the BLAS from one
VK_GEOMETRY_TYPE_AABBS_KHR geometry. opaque maps to
VK_GEOMETRY_OPAQUE_BIT_KHR, default-false semantics matching the WebGPU
path so any-hit shaders run. The BLAS sizing/create/build tail is factored
into a geometry-type-agnostic helper shared with the triangle path; no
TLAS/instance changes needed.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Sway delivers pointer events in surprising orders around input-device
hot-plug — observed: a second wl_pointer.leave after focus was already
cleared, which crashed in PointerListenerHandleLeave (null deref), and
motion/button would crash the same way if an enter never matched one of
our surfaces. Early-return instead. Found while end-to-end-testing the
scroll chain for #32 with a zwlr_virtual_pointer_v1 injector.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Window::onMouseScroll now fires on every backend and speaks one unit:
signed whole detents packed in the uint32 payload, +1 = wheel down
(DOM deltaY sign).
- Wayland: implement the previously-stubbed PointerListenerHandleAxis —
vertical axis only, wl_fixed_to_double / 15 (libinput's units-per-
detent), sub-detent remainder accumulated and reset on pointer leave.
- Win32: add the missing WM_MOUSEWHEEL case — -GET_WHEEL_DELTA_WPARAM /
WHEEL_DELTA with a remainder accumulator for free-spinning wheels.
- DOM: dom-env.js normalizes WheelEvent.deltaY per deltaMode (100px /
3 lines / 1 page per detent) with the same remainder scheme, so wasm
delivers the identical unit instead of raw browser-specific deltas.
- Document the contract on Window::onMouseScroll.
- tests/MouseScroll: compositor-free regression test driving the
Wayland axis handler directly.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Five pillars, four colored point lights; closest-hit emits one shadow ray
per light from the same invocation (raysPerPixel = 4, maxDepth = 2), so up
to four rays per pixel rtAccumulate in a single SHADE pass — the contention
case #30 exists for. Each pillar casts four separable colored shadows; an
accumulator race or capacity drop shows as flickering dark noise or a
missing shadow color. Two frames a second apart diff at 2 px / 1.85 M
(last-ulp CAS ordering), confirming no lost updates.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
wfAccum becomes array<atomic<u32>> (4 slots/pixel, f32 bit patterns — same
16 B/pixel footprint) and rtAccumulate CASes each channel, so N rays for one
pixel may resolve in the same SHADE pass without the read-modify-write
racing. GENERATE clears with atomicStore (bitcast(0.0) == 0u); RESOLVE
atomicLoads + bitcasts the vec4 it hands runResolve.
Capacity half: RTPass::raysPerPixel (default 1) scales the wavefront
ray/hit/payload buffers to raysPerPixel·W·H rays per bounce so the
per-light emits actually fit instead of being dropped by rtEmitRay's
capacity guard. The accumulator stays per-pixel.
No flag-gating: uncontended the CAS succeeds first try — RTStress SHADE
stays at its documented ~1.0 ms and master-vs-branch renders are
byte-identical, so single-ray consumers pay nothing.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
RT→rgba16float→threshold→blur→composite, end-to-end proof of the three
primitives. threshold/blur run from onBeforeUpdate (one submit each) so the
storage-write→sampled-read dependency gets WebGPU's per-submit barrier
(there is none between dispatches within a compute pass); the composite is a
UI custom shader so it owns the canvas ping-pong. Documents the Vulkan
symmetry (gap 4): the native present path records passes generically and
barriers between them, so the same chain is wireable today.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Adds the minimal WebGPU-backend surface an HDR bloom/post chain needs:
1. wgpuCreateStorageImage2D + StorageImage2D<>: runtime rgba16float (or
other format) textures with STORAGE_BINDING|TEXTURE_BINDING usage, no
CompressedTextureAsset upload — GPU-produced HDR targets.
2. UICustomBindingKind::StorageTexture (kind 5): write-only storage-texture
binding carrying a texel format (the freed UICustomBinding::format byte),
wired through all three binding paths (UI custom / RT / plain compute).
Float textures already sample via SampledTexture (sampleType float).
3. PipelineRTWebGPU::Init(..., hdrOutputFormat): RESOLVE writes the linear
accumulator into a user rgba16float texture (RTPass::outTexHandle)
instead of the rgba8unorm canvas, leaving the composite→swapchain pass to
the app. Default RGBA8Unorm keeps the canvas path byte-identical.
Existing RT examples updated for the _pad→format field rename; the default
paths are unchanged (verified RTStress builds + renders).
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Adds an 8^3 = 512-instance TLAS pick test that shoots one analytically
determined ray through a rayQuery=true PlainComputeShader and checks the
read-back committed hit (customIndex 484, t 40.75). 512 instances sit in
the < 8193 regime that the hardcoded 16384-leaf start used to miss, so the
example fails fast if the shim regresses. Verified in Firefox/WebGPU:
"[RayQueryPick] PASS".
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The software rayQuery shim's _rqTraverseTlas detected BVH leaves with a
compile-time constant TLAS_BVH_LEAVES_START = 16384 - 1, while the actual
TLAS sweep tree is built at depth log2(next_pow2(instanceCount)). For any
scene with fewer than 8193 instances the padded leaf count is far below
16384, so no node index ever reached 16383: every node looked internal,
the descent walked into zeroed out-of-tree AABBs, and the pick reported a
permanent miss. This broke every rayQuery=true compute shader (builder
picking, splash queries) on the WebGPU backend.
Pass the per-build padded leaf count to the shim the same way the
megakernel _rtwTraverseTlas reads wfParams.tlasNPadded: a small uniform
(RqTlasMeta.nPadded) at @group(1) @binding(10), written each wgpuBuildTLAS
from wfNextPow2(instanceCount), and bound by both rayQuery dispatch paths.
_rqTraverseTlas now computes leavesStart = nPadded - 1 dynamically.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Indexing a `layout(descriptor_heap)` array with a runtime (non-constant)
index inside a ray-tracing hit shader device-losts on NVIDIA 610.43.02,
for both SSBO and sampled-image descriptors. A constant/spec-constant
index is fine, and the same dynamic pattern works in fragment shaders, so
it's an RT-stage-specific driver fault — the same family as #7/#15
(descriptor-heap AS reads) and #21/#22 (RT recursion + compute TLAS push).
Unlike the AS-read fault, this cannot be worked around transparently: a
sampled image has no device-address escape hatch the way an acceleration
structure does (OpConvertUToAccelerationStructureKHR), and a buffer-only
buffer_reference rewrite would need a whole address-table architecture
while still leaving the texture half broken. So the resolution is the
documented-limitation path (the precedent set by #7).
Records the fault and its isolation in README's Native RT status and in
the Sponza example README (the textured-closest-hit example, which already
reads its albedo through a spec-constant slot for exactly this reason).
Documents the recommended consumer pattern: bind one resource and index
*within* it dynamically (single geometry SSBO / buffer_reference at a
spec-constant slot; one texture2DArray indexed by layer) rather than
selecting a descriptor dynamically — what the WebGPU path already does.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Two gaps in the Vulkan RT path that fault the device on the NVIDIA
proprietary driver with a non-trivial pipeline (simple VulkanTriangle
never hit them):
1. maxPipelineRayRecursionDepth was hardcoded to 1, so any closest-hit
shader that traces a secondary ray (shadow ray — a very common
pattern) recursed past the pipeline limit (UB → device fault).
PipelineRTVulkan::Init now takes a maxRecursionDepth parameter
(default 1, clamped to the device's maxRayRecursionDepth).
2. The NVIDIA descriptor-heap AS-read workaround rewrites every shader
that reads an accelerationStructureEXT from the heap — including
compute shaders — to read the TLAS device address from a push
constant, but only RTPass pushed that address. A compute shader that
ray-queries the TLAS (rayQueryEXT) therefore ran against an unwritten
push slot → garbage AS handle → VK_ERROR_DEVICE_LOST.
WorkaroundNvidiaAS::Patch now returns a per-shader PatchResult
{patched, tlasPushOffset} instead of writing the clobber-prone global
Device::workaroundTlasPushOffset (removed). VulkanShader stores it;
ShaderBindingTableVulkan/PipelineRTVulkan carry it for RTPass, and
ComputeShader tracks its own offset and pushes the caller-supplied
TLAS address in Dispatch (new defaulted tlasAddress parameter),
mirroring RTPass::Record.
The PushConstantRewrite regression test now asserts Patch's returned
patched/offset and adds two ray-querying compute-shader cases, proving
the rewrite is stage-agnostic and the per-shader offset is correct.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Adds tests/PushConstantRewrite, a host test that compiles representative
ray-generation shaders with glslang, runs the real WorkaroundNvidiaAS::Patch
over them, and asserts with spirv-val (the same invocation vkCreateShaderModule
uses) that the result is valid and contains exactly one push-constant block —
covering both the merge path (shaders that already declare a push constant,
including mat4/vec3/uint, a lone uint, and an array layout) and the synthesize
path, plus a no-op case (push constant but no AS read). It also checks the
published TLAS push offset for each layout.
The workaround namespace is exported so the test can drive Patch directly; both
go away with the rest of the workaround. project.cpp wires the test as an
executable that recompiles the module and requires glslang + spirv-val.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The NVIDIA descriptor-heap AS-read workaround (#15) rewrote heap
acceleration-structure reads into a load of the TLAS device address from
a push-constant block. It always *synthesized a new* push-constant block,
so any ray-tracing shader that already declared one ended up with two —
which SPIR-V forbids ("at most one push constant block statically used per
entry point"), and vkCreateShaderModule's spirv-val check rejected:
Entry point id '4' uses more than one PushConstant interface.
WorkaroundNvidiaAS::Patch now detects an existing PushConstant variable and,
when present, appends a single ulong member (the TLAS address) to that
block instead of adding a second one, reading the address through the
shader's own push-constant variable. The append offset is the end of the
user's block, computed from the members' explicit Offset/ArrayStride/
MatrixStride decorations (correct under both scalar and std140 layout) and
rounded up to 8. Shaders with no push constant of their own keep getting a
freshly synthesized single-member block at offset 0, exactly as before.
That offset is published via Device::workaroundTlasPushOffset and RTPass
feeds it to vkCmdPushDataEXT so the address lands where the rewritten load
reads it (0 for the synthesized case, preserving prior behaviour).
Verified on the affected driver (NVIDIA 610.43.02, RTX 4090): VulkanTriangle
ray-traces correctly and validation-clean both with and without a
user-declared raygen push constant.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>