40 commits
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308f40a3fb |
fix(ui): Campaign LA gate round 2 — fixed-canvas stretch filters bilinearly like retail's presentation blit
AD-98's fixed-canvas stretch (
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9ce7292570 |
fix(ui): Campaign LA gate round 2 — character-select screen media resolution
Root cause: the LA8 character-select screen's root background RenderSurface
(0x06007576, LayoutDesc 0x21000004 element 0x1000039A) is PFID_CUSTOM_RAW_JPEG
— a complete JFIF byte stream (confirmed live: 414,230 bytes, FFD8...FFD9,
Width=0/Height=0 on disk) that SurfaceDecoder.DecodeRenderSurface had no case
for, so it fell through the switch's `_ => DecodedTexture.Magenta` default arm
with nothing logged. Retail's RenderSurface::CreateFromSourceData
(named-retail decomp @0x004440a0) hands this exact byte stream to the Intel
JPEG Library (`_ijlInit`/`_ijlRead`/`_ijlFree`) at runtime and reads the real
pixel dimensions from the JPEG's own SOF header rather than this
RenderSurface's Width/Height fields, which are legitimately 0 for this
format — the same reason the decoder's generic non-positive-Width/Height
guard was also wrong to apply here.
A per-id media sweep of the installed DAT (new EveryDeclaredMediaId_
ResolvesToADecodableTexture test) showed this was the ONLY unresolved id
among the screen's 25 distinct media ids — the listbox (0x1000039D) and every
button face resolve fine. The listbox interior and the ENTER button's
circular fill are both transparent regions layered on top of the root, so
the one broken root background bled through everywhere nothing opaque
covered it, producing all three symptoms (full-screen background, listbox
interior, ENTER circle) from one cause.
Fix: SurfaceDecoder now special-cases PFID_CUSTOM_RAW_JPEG before the
Width/Height guard and decodes it with StbImageSharp (dual Unlicense/MIT,
pure managed, no native dependency — works on the Linux headless/graphical
targets Slice K/L commit to). JPEG is ITU T.81-standardized, so any
conforming decoder reproduces the pixels IJL would; round-tripped a
synthetic fixture through the real decode path to confirm. Verified against
the live DAT: 0x06007576 now decodes to 800x600, exactly the screen's
LayoutDesc-authored size.
Guard: per claude-memory/feedback_ui_resolve_zero_magenta.md, an unresolved
id reaching the draw path should be loud. That memory's existing guard
("guard on the id, not the handle") only covers a DIFFERENT trap — a
zero/absent id — and could not have caught this one, which has a real,
non-zero, DAT-resolved id. No guard existed for "id resolves but can't
decode" or "id doesn't exist in either dat" before this change, so both were
silent. SurfaceDecoder now logs once per surface id on every magenta-return
path (null data, JPEG decode failure, unsupported format, no-palette
paletted format, decode exception); TextureCache.GetOrUploadRenderSurface
logs once per id when a RenderSurface isn't found in Portal or HighRes at
all.
Tests: CharacterManagementLiveDatTests.EveryDeclaredMediaId_
ResolvesToADecodableTexture (installed-DAT gate, ACDREAM_PROBE_LIVE_MOUNT=1)
sweeps every StateMedia id in the char-select root + listbox row template
and asserts none decode to the magenta placeholder — this class of gap now
fails the gate instead of shipping silently. SurfaceDecoderTests adds
PFID_CUSTOM_RAW_JPEG coverage (real decode via a synthetic from-scratch
JPEG fixture — not retail art, generated with StbImageWriteSharp and
round-tripped before being pasted in as a literal; corrupt-data and
null-SourceData magenta paths) plus PFID_P8/PFID_INDEX16 no-palette cases
that now flow through the same logged path.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
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16ed6e7c5c |
fix(render): keep authored surface translucency on composite textures
Some checks are pending
Headless portability / portable-headless (ubuntu-latest) (push) Waiting to run
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Headless portability / linux-vulkan (push) Waiting to run
The user reported wielded items subtly hiding particle effects, as if a translucent texture were missing. Root cause verified in source: the DAT authors a per-surface Translucency float, and the shared-atlas extraction honors it by baking (1 - Translucency) into the texture alpha (MeshExtractor). But a surface with an appearance override - ObjDesc subpalettes or texture changes, which wielded loot typically carries - routes through the per-instance composite paths instead (WbDrawDispatcher.ResolveTexture -> TextureCache GetOrUploadWithPaletteOverrideBindless / GetOrUploadWithOrigTextureOverrideBindless -> DecodeFromDats), and the textured decode there never saw the authored value: only the Base1Solid branch passed it (SurfaceDecoder.DecodeSolidColor); DecodeRenderSurface has no translucency input at all. Consequence: the part still classified translucent, still sorted in the RetailAlphaQueue, still drew with depth writes off - but with texture alpha = 1 it overwrote everything already composited behind it. Particles behind the part vanished; particles in front survived. The same GfxObj without overrides (atlas path) rendered correctly, which is why the loss was so selective and subtle. Fix: SurfaceDecoder.ApplyAuthoredTranslucency mirrors the atlas bake (in-place alpha scale, caller-owned buffers, Magenta sentinel guarded), and DecodeFromDats applies it behind an opt-in flag set by exactly the two world composite paths. The sky path stays unbaked (its shader applies the authored opacity separately - baking would double-apply, the AP-89 compounding class) and particle sheets stay unbaked (emitter-driven alpha, no authored-translucency consumer). Composite cache keys already include the surface id, so the baked alpha is cache-coherent. This closes an unregistered divergence (no register row existed; the fix restores parity with the shipped atlas mechanism, so none is added). Investigation evidence: equipped children and world objects share the same classification chain (ClassifyPackedBatches/GroupKey), so the gap was override-driven, not attachment-driven - a dropped item with the same ObjDesc was equally affected. Core SurfaceDecoder tests 22/22 (3 new); App Release suite 3,968 / 3 skips. Visual gate: a wielded item with authored-translucent parts must let its particle effects show through. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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8a7a0837e1 |
feat(render): Vulkan campaign V11 step 2 — delete the OpenGL backend
Vulkan is the sole, user-signed-off backend (V10 landed) and step 1 already removed ImGui/Studio/DevTools. This step deletes the GL rendering backend itself: every Gpu/Gl/** implementation, the Wb ManagedGL*/GLHelpers/GLSLShader/GLStateScope/RenderStateCache/ BindlessSupport family, Shader/ShaderProgramConstruction/SamplerCache, RenderBootstrap, and RenderFrameGlStateController. GameWindow.cs's Run()/CreateGraphics()/CreateBackbufferReader()/ OnLoad() collapse to their Vulkan-only arm; GameWindowGraphics loses its OpenGlGameWindowGraphics subclass. RuntimeOptions.RenderBackend and RenderBackendKind (incl. the Gl member of GpuBackendKind) are gone — there is nothing left to select between. The five world-draw dual-arm renderers (WbDrawDispatcher, EnvCellRenderer, TerrainModernRenderer, ParticleRenderer, SkyRenderer) and the composition roots (WorldRenderComposition, HostInputCameraComposition, LivePresentationComposition, FrameRootComposition) collapse to their RHI-only arm. GL-only diagnostic properties with a live external reader (DynamicBufferCount and friends) simplify to a documented `=> 0`/no-op rather than disappearing, since the reader is out of this commit's scope. A few GL-flavored mechanisms turned out to be backend-neutral once isolated: GlConstructionCleanupLedger is renamed ResourceConstructionCleanupLedger (exception-chain walking has nothing to do with GL), and GlfwNativePlatformProbe moved out of the otherwise GL-only GraphicalCapabilityRecord.cs into GraphicalWindowBackendSelection.cs before the rest of that file was deleted. Test files with no surviving subject are deleted outright (GraphicalCapabilityRequirementsTests, ShaderProgramConstructionTests, PortalDepthShaderParityTests, TextureCacheBindlessTests, TextRendererFailureSafetyTests, ClipFrameUploadTests, every Gpu/Gl/*Tests, GlTextureOwnershipTests, RenderFrameGlStateControllerTests); others get their dead GL-only members trimmed while their live assertions stay (ClipFrameLayoutTests' MeshClipSsboBinding check now reads GpuBindingModel.StorageClipRegions, the same binding index under its new backend-neutral name; GpuResourceRetirementTransactionTests drops its OpenGLGraphicsDevice-subclassing test double and the two GL queue tests it existed for). EnvCellRendererTests' construction helper now builds a real ObjectMeshManager via VulkanMeshPipelineDevice instead of passing null through a null-forgiving operator, since the RHI constructor never tolerated a null mesh manager and the old GL constructor (which did) is gone. Deferred to the next two steps, deliberately not touched here: the Silk.NET.OpenGL/.Extensions.ARB package references, IMeshPipelineDevice.Gl (WbMeshAdapter's GL? threading stays in place), Chorizite.Core's stale csproj comment (the package itself is still load-bearing — TextureFormat and friends are used well beyond the deleted ManagedGLUniformBuffer), and the CI/gate scripts. Build: `dotnet build AcDream.slnx -c Release` — 0 warnings, 0 errors. Tests: full-solution `dotnet test` green across every project (App.Tests 3937/3940 + 3 skips, Core.Tests 3296/3298 + 2 skips, all others 100%); the 2 App.Tests names that flake under full-suite parallel execution (#250-family, documented pre-existing) pass in isolation. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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2e8b8b91ad |
feat(render): Campaign V slice V6l commit 3 - the offscreen viewports draw on Vulkan
Amendment 3 of three: the paperdoll and creature-appraisal views render on the
Vulkan arm. Plan section 5.5.16 defect 3 named two backend fixes as the
precondition; both are here, and running it found two more the note could not
have known about.
Fix 1: a layered sampled view per render target. An ATTACHMENT view must be
VK_IMAGE_VIEW_TYPE_2D and the global texture table's descriptor array is
sampler2DArray, so the attachment view cannot legally be registered into it -
section 5.5.7 recorded that as invalid usage rather than a mismatch that samples
oddly, and V6k made RegisterTexture refuse it loudly and name this fix.
VulkanGpuTexture now creates a SECOND, layered view over the same image for a
colour render target: one image, one allocation, two ways of looking at it,
legal without any creation flag. SampledView is what the table registers for
every texture, so the question disappears rather than being answered.
Fix 2: sample-count pipeline variants for WbDrawDispatcher. Vulkan requires a
pipeline's rasterizationSamples to equal the pass it draws in, and this
dispatcher draws in two passes with different counts - the multisampled
backbuffer world pass and the single-sampled offscreen target, which the
contract fixes at one sample. Its five pipelines became a MeshPipelineSet with
two instances, selected at bind time from the live pass rather than from the
scope, which is the same shape section 5.5.8 gave the depth-format problem. When
the backbuffer is single-sampled the two sets are one object, so nothing is
built twice and nothing is freed twice. The offscreen target's DEPTH attachment
also had to take the device's own combined depth/stencil format rather than the
contract enum's literal D24_UNORM_S8_UINT: a pipeline bakes one depth/stencil
format under dynamic rendering and the same pipelines draw in both passes, so a
second format would make one of the two undefined.
Fix 3, which running it found: entity APPEARANCE composites were still
bindless-only, so no entity with a palette override could be drawn on the Vulkan
arm at all - the doll being one, and every creature and player besides. The
backend that serves it has existed since V6i-2 and had no production consumer;
it has one now. TextureCache builds the composite cache on both arms, and
EnsureCompositeTexturesAvailable stops asking about bindless. Nothing about the
cache itself changed: the sharing, the bounded unowned LRU, the metered upload
budget and the retirement fence were already backend-neutral.
Fix 4, which the first successful capture found: the doll rendered upside down.
UiViewport has flipped V since V4a because a GL framebuffer's origin is
bottom-left, so its colour texture samples bottom-up. A Vulkan image's origin is
top-left and the backend's negative viewport height stores the rendered image
that way round, so the same flip stands the doll on its head. That is a property
of the backend that made the texture, not of the widget that draws it, so
IUiViewportRenderer answers TextureIsBottomUp and UiViewport asks. The line this
replaces had predicted exactly this failure since it was written.
The seam. WbDrawDispatcher's RHI arm borrows its pass from IWorldPassScope
rather than opening one, so a viewport that opens a pass of its own has to
publish it there for the span of the draw. Publish is on the interface now for
that. It does not nest: the world phase has closed its own pass by the time
private presentation runs, which is where these viewports have always drawn.
Gates. Release build green. App tests 4,129/3 skips; complete Release suite
9,192/5 (one solution-wide run reported a single App failure that did not
reproduce in the App suite alone or in a second solution-wide run - the
documented rerun-singly flake class; the failing test name was not surfaced by
the runner and is not carried forward as a claim). Strict GL offline pixel gate
against
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b1ad1d481b |
feat(render): Campaign V slice V6l commit 1 - particles draw on Vulkan
Contract amendment 1 of three, and V4e's content behind it. Plan section 5.5.16
recorded that both particle pipelines draw with per-instance VERTEX attributes
and that the pinned contract could express instanced DRAWING but not instanced
vertex INPUT: one stride, no divisor, one buffer at VertexInputRate.VERTEX. That
is what stopped V4e. This takes the reviewed option (i) - a second vertex
binding with a per-instance rate.
The amendment. GpuVertexLayout grows a per-binding notion (binding index,
stride, input rate) and GpuVertexAttribute names the binding it is fed from,
defaulting to 0; IGpuPassEncoder.BindVertexBuffer takes a binding index. Every
layout written before this slice keeps its exact meaning through
GpuVertexLayout.Interleaved, which is one vertex-rate binding 0 - and
GpuContractTests asserts that as a requirement rather than trusting it. Both
backends carry the rate natively and at no cost: VK_VERTEX_INPUT_RATE_INSTANCE
on the pipeline, glVertexAttribDivisor recorded once into the pipeline's VAO
where it survives every later attribute rebind.
GpuVertexFormat.UInt1 comes with it, and is necessary to it: particle.vert
declares `layout(location = 6) in uint aTextureIndex` and the amendment's whole
premise is that no shader is edited. Same kind-distinction UByte4UInt was added
for at V4d - GL needs glVertexAttribIPointer, Vulkan needs R32_UINT, and the
float path would reinterpret the value's bits rather than approximate them.
Options (ii) and (iii) were rejected on the record: all ten storage bindings are
spoken for and reusing binding 0 would have the GL particle draw clobber
WbDrawDispatcher's instance array mid-frame (section 5.5.8's hazard in its GL
form); CPU-expanding instances is 5x billboard bandwidth and does not scale to
mesh particles at all.
The arm. ParticleRenderer.Rhi.cs is a SECOND arm per section 5.5.6, not a
replacement - every GL statement in the sibling file is the one it always
issued. Five pipelines replace the imperative glBlendFunc switch (two billboard
blends, three mesh blends) because core Vulkan 1.3 does not make blend dynamic.
The per-flight VAO/VBO pool disappears because every ring allocation inside a
frame is already distinct memory that lives until the frame retires. The
binding-9 table is not bound at all - the device owns the table and the encoder
binds set 2. The pass is BORROWED from IWorldPassScope. Depth tests but does not
write, compare is Less and alpha-to-coverage is off, which is the ambient GL
state particles have always drawn under rather than a choice. Everything above
the submission seam - emitter iteration, retail distance ordering, the
deferred-alpha handoff, billboard axis construction, blend resolution - is the
same CPU code on both arms.
The first Vulkan particle frame threw rather than drew, which is the second
defect of the compiles-clean class this slice found by running:
TextureCache.AcquireParticleTexture is bindless-only, so the standalone particle
texture cache did not exist on a backend without GL. It exists on both arms now.
Everything about it that matters - sharing equivalent surfaces between emitter
owners, the bounded unowned LRU, retirement behind the frame-flight fence - is
already backend-neutral; only how one entry is created and destroyed differs,
which is what IStandaloneBindlessTextureBackend is for. The RHI arm creates the
image through IGpuDevice.CreateTexture with a real sampler and releases the
table slot before the image, which is the GL arm's order and for the same
reason. The composite cache stays GL-only: it serves entity appearance, not
particles.
The durability fix V6k earned. That slice found the sky declaring a 32-byte
stride against a 36-byte AcDream.Core.Terrain.Vertex - the record carries a
TerrainLayer no sky attribute names - and noted that every .Rhi.cs arm restates
a CPU record's footprint from memory while only sky had a test.
RhiVertexLayoutStrideTests is that test for the rest: world mesh, terrain, sky,
retained-UI sprite, debug line, and both particle bindings, each asserted
against the record or the producer's own float count, plus two sweeps over all
seven for attributes that reach past their stride or name an undeclared binding.
Four private layouts became internal to be assertable; nothing else about them
moved.
Gates. Release build green. App tests 4,121/3 skips (4,109 baseline plus three
contract tests and nine layout tests); complete Release suite 9,184/5. Strict GL
offline pixel gate against
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22aa2edc65 |
feat(render): Campaign V slice V6k commit 1 - the sky draws on Vulkan
V4f's content, landed as a SECOND arm per section 5.5.6: GL keeps its raw world
path through to V10 and the RHI world path ships on Vulkan. Every GL statement in
SkyRenderer is the one it always issued; the encoder arm lives in SkyRenderer.Rhi.cs
and runs only when there is no GL context.
What it produces. ACDREAM_RENDER_BACKEND=vulkan renders the sky: the dome
quadrants, the horizon band, the cloud sheet and the fog gradient, in the same
place and the same colours as the GL capture of the same scene (within a few
units on the channels sampled, which is the day-fraction drift between two
launches). Section 5.5.15's first V7 defect - "the sky is flat fog" - is closed.
Three things differ from the GL arm, each because Vulkan bakes what GL sets. The
per-submesh blend function becomes two PIPELINES, additive for sun/moon/stars and
straight alpha for everything else, because core Vulkan 1.3 does not make blend
dynamic. The SkyParams block becomes a ring slice taken per draw rather than one
buffer rewritten per draw, because a descriptor's contents are read at execution
time, not record time. And the pass is borrowed from IWorldPassScope, because the
frame's one backbuffer pass resolves and a second pass could not load what it
left.
The sky is the first Vulkan consumer of set 1 binding 4. Section 5.5.8 recorded
that UniformSkyParams was missing from the uniform set layout and V6i-2 added it;
until now nothing had ever bound it.
The stride bug, which is the fourth of its class this campaign. The first Vulkan
sky frame drew the dome as a field of blue-white noise. The RHI vertex layout
declared a 32-byte stride - position, normal, texcoord, exactly what sky.vert
reads - while AcDream.Core.Terrain.Vertex is 36 bytes: it carries a fourth
member, TerrainLayer, that no sky attribute names and that the GL arm never
described to a glVertexAttribPointer but did count, because it says
sizeof(Vertex). Nothing else in the frame looked wrong, no validation rule was
violated, and the offline pixel gate masks the sky band, so only a side-by-side
capture found it. SkyVertexLayoutTests now asserts the REQUIREMENT - the stride
is the uploaded record's footprint - rather than today's number.
The last interim handle table is gone. V4t retired the private
GlBindlessHandleTable in WbDrawDispatcher, EnvCellRenderer, TerrainModernRenderer
and ParticleRenderer and deliberately left the sky's, because the sky is the one
world path that mints its own resident handles from TextureCache's raw GL texture
names rather than interning someone else's. It now registers those handles
through V4t's RegisterWorldTextureHandle seam instead, which is the same
mechanical change the other four took, and the class and its tests are deleted
because nothing else ever used them.
TextureCache gains RegisterWorldSurface(surfaceId, repeat), the sky's RHI texture
source: the same DecodeFromDats the GL path uses, created through
IGpuDevice.CreateTexture and paired with a real sampler object rather than baked
into a bindless handle. Keyed by (surface, wrap) for the same reason the GL arm
keys its handles that way - a table entry is a combined image sampler, so the
dome sampled CLAMP_TO_EDGE and a scrolling cloud sheet sampled REPEAT are two
entries over one decoded texture.
Gates. Release build green. App tests 4,109 passed / 3 skipped - the 4,112
baseline less the six GlBindlessHandleTable tests that went with the class, plus
three vertex-layout tests. Strict GL offline pixel gate against
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565c351f93 |
feat(render): Campaign V slice V4t-2 — the world texture stack crosses to GpuTextureSlot
The rest of V4t. The composite, particle and shared-atlas texture paths now
hand out the device's GpuTextureSlot instead of a raw 64-bit
ARB_bindless_texture handle, and GroupKey, CachedBatch and ObjectRenderBatch
carry that slot. WbDrawDispatcher, EnvCellRenderer and ParticleRenderer retire
their interim GlBindlessHandleTable instances and share the device's one
table, exactly as V4t-1 did for terrain. Nothing about world submission
changes otherwise: these three renderers are still raw GL, still bind binding
9 themselves, and still draw the same geometry in the same order.
**What produces a slot now.** CompositeTextureArrayCache's GL backend interns
each array's handle when it makes it resident and retires the entry when it
makes it non-resident, so the pair is created and destroyed together and the
cache above it never learns a device exists — the fake backend its tests use
mints a stand-in slot. TextureCache.AcquireParticleTexture does the same for
the one-layer particle arrays it owns, including on its rollback path.
ObjectMeshManager registers each shared atlas's wrap/clamp handles at batch
upload; registration is idempotent by handle, so the many batches sharing an
atlas share its entry.
**Slot release is stricter than what it replaces, not looser.** The interim
tables never released anything — the class comment said so — and they grew
without bound. The device's table has a fixed 16,384-slot capacity, so an
unreleased entry is now a leak with an end. Every producer therefore retires
its entry: the composite backend at MakeNonResident, the particle backend at
MakeNonResident, and ObjectMeshManager when a retiring atlas's PHYSICAL
retirement completes — the point at which its handles are already non-resident
and its texture already deleted. That last one needs the handles snapshotted
at eviction, because ManagedGLTextureArray.Dispose zeroes its own copies as
its first act. Teardown deliberately does not release: the device is being torn
down alongside its callers, so there is nothing left to recycle a slot into,
and deferring work through a possibly-disposed retirement queue would turn a
clean shutdown into a throw.
**The default value became load-bearing, and that is the one real hazard here.**
BindlessTextureLocation could say "not resolved" with handle 0, because no
texture has handle 0. A slot index has no spare value — default(GpuTextureSlot)
is real slot 0 — so a positional record would have turned every
budget-rejected or still-uploading composite into a silent read of whichever
texture registered first. That is the magenta-placeholder failure shape one
layer down. The type is now a struct storing the slot one-based, so default IS
Unresolved, with a test pinning both halves: default is unresolved, and a
location naming slot 0 is resolved and distinguishable from it. Elsewhere the
sentinel is already exact — GpuTextureSlot.Unassigned is 0xFFFFFFFF, which is
common.glsl's ACDREAM_TEXTURE_NONE — so the classify path's "no texture yet"
test and the particle billboard's untextured branch are unchanged in meaning.
**GroupKey ordering is preserved because the key never ordered anything.**
Handle→slot is a bijection (the device interns one slot per resident handle),
so the same (entity, batch) pairs bucket together as before. The key reaches
equality, hashing and the scene-digest fingerprints — never a comparator:
opaque and translucent groups sort by cull mode then camera distance, the
delayed-alpha path by viewer distance then submission ordinal, and group
enumeration follows the persistent dictionary's insertion order, which a
changed hash does not disturb. The digests hash the slot index where they
hashed the handle; both sides of the render-shadow comparison compute them the
same way, so the value changing is invisible to it. Read
CompareOpaqueSubmissionOrder, CompareTransparentSubmissionOrder and
AlphaFingerprintComparer before doubting this — sort-order drift is a
pixel-visible regression class this project has hit, and it is why the check
was made before the retype rather than after.
**One visibility change, forced rather than chosen.** BindlessTextureLocation
was public and now holds an internal contract type, so it is internal;
ObjectRenderBatch.TextureSlot is internal on an otherwise public class for the
same reason. Nothing outside this assembly and its InternalsVisibleTo test
assemblies named either.
**SkyRenderer keeps its interim table**, and the report should say why: the
sky's textures are minted by SkyRenderer itself from TextureCache's raw GL
texture names, which this slice does not retype, so it would be the one
consumer registering handles it produced — a different shape from the world
stack. The offline gate also masks the sky band, so the one automated
instrument here cannot see a sky regression. V4f owns that renderer.
**Gates.** GL offline pixel gate vs
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b16f820643 |
feat(render): Campaign V slice V6h — the Vulkan composition host
ACDREAM_RENDER_BACKEND=vulkan now runs the real GameWindow composition rather
than a second main(). All nine phases execute: DAT load, streaming, camera,
entity table, session, and the real retained UiHost drawing through the RHI.
No world renderers — they are raw GL until V4t and the world arm behind it.
The offline log is the client's own (acdream.pak opened, 6266 spells, Region
0x13000000, "loading world view centered on 0xA9B4FFFF", fourteen retail
LayoutDesc lines, streaming radii), and the captured frame is the retail
retained UI: vitals, combat/spell bar with DAT scarab icons, the nine-slot
toolbar, chat with tabs and Send, radar/compass with dat-font glyphs. Sampled
against the GL capture the widgets agree — chat interior RGBA (25,24,27,158)
vs (22,21,23,158), vitals bar (117,1,0) and toolbar slot (0,11,17) identical.
Three seams, as §5.5.9 specified:
1. Platform acquisition — already generic — publishes GameWindowGraphics
instead of a bare GL. Phases that still speak raw GL read Graphics.Gl and
take their Vulkan arm when it is null; each branch names the slice that
removes it.
2. VulkanHostInputCameraCompositionFactory is a new file and the whole of the
Phase-1 fork: four graphics members differ, input/camera/pointer delegate.
The default factory is chosen inside the phase from the platform result.
HostInputCameraResult gained backend-neutral Retirement and FrameSlots.
3. The frame root forks on one condition. The GL world-scene assembly is
unchanged, wrapped in `if (gl is not null)`; the Vulkan arm's graph is one
backbuffer clear pass computing the same RenderFrameFoundation from the same
clock and weather owners, then private presentation over it.
§5.5.9's three TextureCache couplings are unpicked: the constructor takes GL?
and rejects bindless without one, world entry points route through a Gl
property that throws naming V4t, and the (GlGpuTexture) VRAM-accounting cast
became a backend test. That cast's stated reason — DrawSprite's texture-unit
binding — was already stale, deleted at V6d.
VulkanBringUpHost is reduced to the capability-probe harness it is named for:
the instance/surface/device/swapchain sequence moved into VulkanGraphicsContext,
which the composition host and the harness now share. It is reached only with
ACDREAM_VULKAN_PROBE=1.
One latent Vulkan defect surfaced and is fixed here. The first composition-host
frame died with ErrorDeviceLost; validation named VUID-vkCmdDraw-None-08600 —
descriptor set 2 never bound. VulkanGpuPassEncoder bound sets 0/1/2 only as a
side effect of BindStorageBuffer/BindUniformBuffer, so a pass sampling the
texture table while binding no buffer — every retained-UI and debug-line pass —
drew with the table unbound. It survived V6c-V6g because the bring-up host
always drew VulkanRhiScene first and the UI pass inherited its binds; the
composition host has no 3-D scene. The fix is one line in the encoder's
constructor beside the viewport and scissor defaults, which exist for exactly
the same reason: a pass opens with complete binding state rather than depending
on what preceded it.
Gates: strict GL offline pixel gate against
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f6f58a12db |
feat(render): put the retained UI and debug lines on both backends
Campaign V slice V6d, commit 2 of 3. TextRenderer and DebugLineRenderer were the only two renderers speaking the RHI, and both refused any device that was not a GlGpuDevice. They now refuse nothing: this is the first production rendering acdream can do on Vulkan.
Three things had to go.
The loose uniforms. debug_line declared uView and uProjection separately and DebugLineRenderer set them straight against the compiled GL program, because the pinned push-constant block carries one combined matrix and IGpuPassEncoder has no verb for arbitrary named uniforms. That was never portable — Vulkan has no default uniform block at all — so the shader converged on uViewProjection and Flush multiplies on the CPU. System.Numerics is row-vector convention while GLSL reads the floats column-major, which transposes, so the CPU equivalent of the old per-vertex uProjection * uView is view * projection. The product now rounds once per frame rather than once per vertex; these lines only draw when collision wireframes are switched on, so the offline gate sees nothing of it. ui_text's uScreenSize became the block's two spare scalars, uParamA and uParamB, with the same two divisions and the same NDC mapping around them.
The sampling mode. uUseTexture selected between font coverage, RGBA modulate and flat colour, and no field of the 96-byte block means that. It did not need one: which of the two texture-table slots is assigned IS the mode. uTextureIndexB assigned means a single-channel coverage source, uTextureIndexA assigned means an RGBA colour source, neither assigned means the vertex colour alone. GpuTextureSlot.Unassigned is already a loud sentinel for exactly this kind of question, and both branches guard so it never reaches a sampler. That also retired the 1x1 white fill texture: DrawFill routed solid quads through the sprite bucket relying on white times colour, and the untextured branch produces the same value with no texture at all. Multiplying by 1.0 changes no bits, and the gate agrees.
The texture binding. The classic glActiveTexture/glBindTexture path survived V4a because DrawSprite takes an arbitrary texture from sixty-odd widget call sites. But TextureCache had already registered every one of those into the device's table — the classic path was consuming the raw GL name that registration also produced. The UI's currency is now UiTextureTableHandle, a one-based table index whose zero is the same "no texture" every widget already guards on; a raw slot index would have turned all of those guards into silent false negatives, since slot 0 is perfectly valid. One-based rather than the slot itself because GpuTextureSlot is internal to the pinned contract while UiRenderContext.DrawSprite, TextureCache.GetOrUploadRenderSurface and a dozen widget properties are public, and neither publishing a contract type nor converting the retained UI to internal belongs in this slice.
Two consequences worth stating. The two backends disagree about what a 2-D table entry is — GL reconstructs a sampler2D from the bindless handle, Vulkan reads layer 0 of its sampler2DArray descriptor array — and ACDREAM_SAMPLE_2D is the one place that lives. Keeping GL on sampler2D is what leaves the UI's textures exactly as they are, including the paperdoll/appraisal FBO colour texture, which is an externally-owned GL_TEXTURE_2D from the §7.1 transitional seam and cannot become an array before V4g. On the Vulkan side, sampled views are now always layered, which also removes a latent invalid usage V6c shipped: it registered a Type2D offscreen view into a descriptor array whose element type is sampler2DArray.
And one real fix. Sampling through the table means a bound sampler object overrides the texture's own parameters. Nearest-requested UI art used to get its point filtering from a glTexParameter applied before the bindless handle went resident, so registering it with the stock WorldRepeat sampler would have made every retail icon and dat-font glyph silently bilinear. Those now register with a nearest-and-repeat sampler.
Supporting moves: GlGpuDevice.CreatePipeline splices common.glsl the same way Shader does, since an RHI shader that reads the table needs the table declared; GlGpuPassEncoder binds the device's table with the pipeline, which is the GL analogue of Vulkan binding descriptor set 2 per draw, and has to be per-bind because every raw-GL world renderer puts its own privately-numbered table at that binding; and the encoder derives GL_MULTISAMPLE from the pass's SampleCount, which is where the retained UI's hand-rolled glDisable belonged all along. TextRenderGlStateScope is deleted — the encoder's ambient capture restored a strict superset of it — and its failure-safety test follows the guarantee to GlAmbientCapabilityState, which gains a fakeable seam and, with it, the multisample-dimension coverage #249 recorded as missing.
App tests 4,057 passed / 3 skipped, unchanged from commit 1. Offline pixel gate against
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096dd203fa |
feat(render): Campaign V slice V4a - port TextRenderer/BitmapFont/DebugLineRenderer/TextureCache UI path onto IGpuDevice
Second attempt at V4a after |
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9aaf97e785 |
Revert "Campaign V slice V4a" - it lost world multisampling
This reverts
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ceec3bc440 |
feat(render): Campaign V slice V4a - port TextRenderer/BitmapFont/DebugLineRenderer/TextureCache onto IGpuDevice
TextRenderer, BitmapFont, DebugLineRenderer, and TextureCache's UI-texture
upload path (GetOrUploadRenderSurface/UploadRgba8) now issue every draw and
resource creation through the pinned IGpuDevice/IGpuFrame/IGpuPassEncoder
RHI contract instead of raw GL. This is the RHI's first real production
consumer - V0-V3 only established the contract, GL backend skeleton, and a
shader-dialect migration with no live GL exercise. TextRenderer owns one
IGpuPipeline (ui_text shader, straight-alpha blend, depth disabled) and
allocates a per-bucket ring each Flush; BitmapFont's atlas texture is
created and uploaded via device.CreateTexture/.Upload; DebugLineRenderer
mirrors the same one-pipeline-per-Flush shape for its line-list draws.
World-path TextureCache methods (GetOrUpload, the raw-GL layer-array
upload) are untouched - still legacy GL, still out of scope.
Frame lifecycle: GpuDeviceFrameLifetime (RenderFrameOrchestrator.cs) wraps
IGpuDevice.BeginFrame()/IGpuFrame.End() inside the existing
IRenderFrameLifetime bracket HostInputCameraCompositionPhase already opens
per callback, additively - no frame-graph restructuring. Ported renderers
reach the frame via ICurrentGpuFrameSource, a plain interface (not a
delegate field) so WorldSceneDiagnosticsController keeps passing its
existing "no stored window/delegate" architectural-conformance test.
Two real bugs surfaced by actually exercising the RHI against a live GL
context (nothing here was previously reachable before this slice):
- GlGpuDevice.BeginFrame() now resets the render-state cache every frame.
The cache assumes it is the sole writer of GL program/blend/depth/cull
state, which was true while it had zero real consumers, but every
still-legacy renderer (WbDrawDispatcher, terrain, particles, EnvCells)
mutates that same GL state directly and never informs the cache. Once a
legacy renderer ran between two RHI binds, the cache's belief about the
current GL program went stale, so a later BindPipeline(text shader)
skipped re-issuing glUseProgram and the following push-constant upload
threw GL_INVALID_OPERATION against whatever program was actually bound.
Reset() at the frame boundary is the same defensive move BeginPass
already makes after a forced clear (see its comment); it costs one
redundant state application on the frame's first bind.
- GL_MULTISAMPLE has no representation in the pinned contract. Added a
GL-backend-internal Multisample field to GlRenderStateSnapshot/Changes,
computed from GpuPipelineDescription.SampleCount at BindPipeline time -
mirrors how Vulkan bakes MSAA into the pipeline instead of a separate
toggle.
Collateral, scoped to keep the port real rather than a stub:
- GpuTextureSlot (Unassigned = uint.MaxValue, NOT 0) now flows through
every consumer of TextureCache.GetOrUploadRenderSurface/UploadRgba8 and
TextRenderer.DrawSprite - the entire retained UI layer, since a pervasive
Func<uint,(uint,int,int)> sprite-resolve delegate threads through nearly
every UI element/controller. Every prior `== 0` / `!= 0` "no texture"
check became `.IsAssigned` / `!.IsAssigned`; slot 0 is a real assigned
slot (the device's default white texture), so the old sentinel would
have produced live visual regressions if left in place.
- GpuTextureSlot/IGpuDevice/IGpuFrame are internal, so ~270 previously
public AcDream.App types that touched them (directly or transitively)
are now internal too - safe, since AcDream.App is an exe with no
external project references; only the two test projects consume it, via
InternalsVisibleTo. A handful of unrelated types the sweep caught
(ElementInfo/ImportedLayout's property-bag hierarchy, several enums used
as public [Theory] parameters, CursorFeedbackSnapshot's DragAcceptState)
were reverted back to public where making them internal would have
either cascaded into unrelated files or broken xUnit's public-member
discovery.
- ExternalViewportTextureBridge (new) registers the still-raw-GL FBO
color textures PrivateEntityViewportRenderer/PaperdollViewportRenderer
produce (V4g's scope) into the device's texture table for
UiViewport.TextureHandle, via a temporary
GlGpuDevice.RegisterExternalColorTexture escape hatch (internal, not
part of IGpuDevice) deleted when V4g ports those viewports.
- TextRenderGlStateScope.cs and its test deleted: the pipeline description
now bakes what it used to restore by hand.
- ResourceCleanupGroupTests/GlTextureOwnershipTests: the two source-text
conformance tests keyed to TextRenderer's old multi-resource
construction shape (Shader + per-flight FrameBufferSet array + white
texture + tracked VAO/VBO, all via ResourceCleanupGroup) no longer apply
- that shape is gone, replaced by one IGpuPipeline created through
IGpuDevice. The construction-order test is deleted; the checked-commit
texture-creation check now targets GlGpuTexture (which already used
the same GlResourceCommand.CreateName primitive before this slice).
Gates:
- dotnet build -c Release: 0 warnings, 0 errors (AcDream.App has
TreatWarningsAsErrors).
- dotnet test tests/AcDream.App.Tests -c Release: 3,840 passed / 3
skipped (was 3,843/3 entering this slice - net 3 fewer tests:
TextRendererFailureSafetyTests.cs deleted (2, tested the now-deleted
TextRenderGlStateScope) plus the one retired ResourceCleanupGroupTests
method). Full solution: 8,908 passed / 5 skipped across all nine test
projects.
- Offline pixel gate (tools/run-offline-pixel-gate.ps1, parent
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66f114b258 | feat(linux): add graphical platform services | ||
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823936ec31 |
fix(streaming): preserve portal destination ownership
Detach old-world spatial ownership atomically, prioritize destination retirement dependencies, and reveal the viewport at the retail transition edge. Give private paperdoll views independent mesh ownership and retain dormant ACE entities so portal revisits preserve server objects without extending active GPU lifetimes. |
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3e18fc2730 | feat(render): unify physical residency accounting | ||
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6a2fe98cc4 |
refactor(app): compose world rendering startup
Move Region/environment, mandatory modern rendering, terrain, WB, texture, and sampler construction behind the typed Phase-4 composition boundary. Give every fallible GL constructor prefix retryable ownership so partial startup failure cannot leak or replay resource deletion while preserving the accepted render path and DAT inputs. Co-authored-by: Codex <codex@openai.com> |
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749e8ceeb1 |
fix(rendering): bound portal resource lifetime
Separate logical ownership, render publication, and GPU retirement across live entities, landblocks, particles, textures, mesh arenas, portal/UI teardown, and per-frame scratch storage. Add bounded DAT/texture caches, upload budgets, three-frame fence retirement, exact-incarnation appearance reconciliation, frame pacing, and extensive lifetime conformance coverage.\n\nThe seven-destination connected route now cuts peak working/private memory roughly in half, returns Caul to 125-153 FPS locally, and produces no WER or AMD reset.\n\nCo-authored-by: OpenAI Codex <codex@openai.com> |
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8f627cce0e |
fix(D.5.3a): selected-object meter visual-gate fixes (name, gate, flash, magenta)
Visual gate against retail surfaced several fidelity gaps in the selected-object strip; all fixed and user-confirmed. Faithful to gmToolbarUI::HandleSelectionChanged (acclient_2013_pseudo_c.txt:198635) + RecvNotice_UpdateObjectHealth (:196213). - UiMeter.DrawHBar: guard each slice on `id != 0` BEFORE resolve. resolve(0) returns the 1x1 magenta placeholder with a non-zero GL handle, so the single- image meter (caps id=0) was drawing 1px magenta caps at the bar's ends. The 3-slice vitals meter (all ids set) was unaffected. (the magenta-lines bug) - SelectedObjectController: meter visibility is now UpdateHealth-driven (shown when health is known for the selected guid — HasHealth at select or HealthChanged), not shown-on-select; brief green selection flash via Tick revert; overlay floated above the meter so the flash isn't hidden by the bar; name top-aligned into the bar sprite's black band (NameBandHeight) with the bar below. - GameWindow.IsHealthBarTarget: gate the health bar on the server PWD bits BF_ATTACKABLE (0x10) | BF_PLAYER (0x8) — friendly/vendor NPCs and attackable Doors (Misc type) are name-only; players/monsters get the bar. Replaces the too-loose IsLiveCreatureTarget. Wired SelectedObjectController.Tick in OnUpdate. - CombatState.HasHealth(guid): distinguishes a known health value from the 1.0 default, so a re-selected already-assessed target shows its bar immediately. - TextureCache.GetOrUploadRenderSurface: resolve the surface's DefaultPaletteId so paletted (P8/INDEX16) UI sprites decode instead of falling to magenta. - ToolbarController.HiddenIds: also hide 0x100001A3 (stack-entry box) — retail hides it in HandleSelectionChanged; it was rendering as a stray black box. Divergence register: AP-47 (meter-visible timing) retired (now faithful); AP-46 rewritten to the BF_ATTACKABLE/BF_PLAYER gate approximation. Full suite green (2,688 passed / 4 skipped). User-confirmed: name on top, NPC name-only, monster bar on assess, green flash, no magenta. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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e9a5248972 |
fix(D.5.1): dispose IconComposer + RenderSurface GL handles (review)
Two GL texture leaks plugged, both found in code review of
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6e82807863 |
feat(D.5.1): IconComposer — CPU alpha-over icon composite + cache
Adds IconComposer (AcDream.App.UI) which mirrors retail IconData::RenderIcons (decomp 407524): decodes each RenderSurface layer directly via SurfaceDecoder, composites them bottom-to-top with Porter-Duff alpha-over, and uploads the result to a GL texture via TextureCache. Composited handles are keyed by the (iconId, underlayId, overlayId) tuple so each unique combo is uploaded once. Adds a public TextureCache.UploadRgba8(byte[], int, int, bool) wrapper — a thin shell around the existing private overload — so IconComposer can upload its CPU-side composite without duplicating any GL state logic. Pure Compose() path is covered by 2 unit tests (opaque top wins; transparent top preserves bottom). Dat-decode + GL-upload exercised by the visual gate. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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828bec5fb5 |
@
fix(D.2b): point-sample the dat-font atlas so UI text is pixel-crisp The font glyph atlas was uploaded with bilinear (Linear) min/mag filtering, which softens the small dat-font glyphs (the menu/button text "blur"). Add a nearest-filter path to UploadRgba8/GetOrUploadRenderSurface and use it for the font atlases only (world + other UI surfaces keep bilinear). Combined with the existing per-glyph pixel-snap, glyph texels now map 1:1 to screen pixels. Sharpens all dat-font text (transcript, menu, Send/Chat buttons, vitals numbers). Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> @ |
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8e91805206 |
feat(D.2b): Step-0 chrome sprites confirmed + direct-RenderSurface upload path
Step-0 prove-out result: retail UI chrome sprites are RenderSurface objects (0x06xxxxxx) that must be decoded DIRECTLY, not via the Surface->SurfaceTexture chain GetOrUpload uses for world materials (which produced 1x1 magenta/garbage). Added TextureCache.GetOrUploadRenderSurface(id, out w, out h) — Portal/HighRes TryGet<RenderSurface> -> DecodeRenderSurface(palette:null) -> upload, separately cached. This is the path UI chrome + (later) dat fonts use. Confirmed the universal floating-window bevel is an 8-piece border + center fill: center 0x06004CC2 (48x48) edges 0x060074BF/C1 (10x5 horiz) 0x060074C0/C2 (5x10 vert) corners 0x060074C3..C6 (5x5) Recorded in RetailChromeSprites.cs (edge/corner->position mapping is a best guess pending the LayoutDesc 0x21000040 parse; visually confirmed at panel render). The memory-note ids were right; only the decode path was wrong. Temporary prove-out harness (added to GameWindow.OnRender) removed. proveout*.log gitignored. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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c9eef1d7cd |
feat(D.2b): textured-sprite path in TextRenderer + UV-rect DrawSprite
Add uUseTexture==2 (RGBA modulate) branch to ui_text.frag so dat sprites can be drawn through the existing 2D batcher without touching the font path. TextRenderer gains _spriteBufs (per-GL-handle List<float>), DrawSprite(), and a Flush block that issues one draw call per distinct texture with uUseTexture=2. Also adds DepthMask(false) in the state-save block (restored to true after) to prevent the transparent-quad pass from writing depth and corrupting the 3D scene if the UI is flushed mid-frame. TextureCache gains GetOrUpload(surfaceId, out width, out height) — caches pixel dimensions alongside the GL handle so UI 9-slice geometry can compute slice UVs from the source image size without a second decode. UiRenderContext gains a DrawSprite forwarder that applies the current 2D translate stack, matching the DrawRect / DrawRectOutline pattern. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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7433b704fb |
diag(render): tripwires on every silent dat-miss path (white-walls attribution, #105)
The intermittent white-cottage-walls failure has NEVER produced a log line: every dat-read failure on the walls-relevant paths exits silently, and the failed result is cached for the session (mesh batches build once). Today it reproduced on a probe-free launch with a 35-line, zero-error log — so the prior heavy-probes-starve-the-dat-reader framing is not the whole story. Tripwires (print ONLY on anomaly; zero cost healthy; keep until #105 closes): - [dat-miss] DatDatabaseWrapper.TryGet — a miss for an id whose BTree entry EXISTS (re-probed under the same lock); legit not-found fallbacks stay quiet. - [tex-miss] TextureCache.DecodeFromDats x3 — render-thread decode fell back to magenta (Surface / SurfaceTexture / RenderSurface miss). - [cell-miss] GameWindow interior hydration x2 — EnvCell or Environment read returned null, so a cell''s WALLS are silently never registered while its statics still draw (the exact observed geometry signature). Color discriminates the layer on the next occurrence: magenta = TextureCache; see-through + [tex-skip]/[dat-miss] = mesh build; see-through + [cell-miss] = hydration; broken with NO tripwire output = GL-side upload/residency. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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13abf96a5e |
docs(perf): Phase N.6 slice 1 — radius=12 baseline + surface dump path
Capture authoritative CPU+GPU dispatch numbers at Holtburg with the
gpu_us diagnostic now working (commit
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0bfe536858 |
phase(N.5) Task 3+4 fixup: two-phase Dispose + doc consistency
Code quality review caught four issues: - Critical: Dispose interleaved MakeNonResident + DeleteTexture per entry, violating ARB_bindless_texture's "all handles non-resident before any texture deletion" requirement. Reordered to two phases: Phase 1 makes ALL bindless handles non-resident; Phase 2 deletes ALL bindless textures; Phase 3 deletes legacy Texture2D textures. - Important: per-call _bindless?.MakeNonResident replaced with a single if (_bindless is not null) guard around the whole Phase 1 block — cleaner reasoning, one null check. - Minor: test contract comment referenced wrong task number for visual gate; corrected to match current plan. - Minor: two abbreviated XML docs (GetOrUploadWithOrigTextureOverrideBindless, GetOrUploadWithPaletteOverrideBindless) expanded to mention the throw-on-null-bindless contract for IDE readers. This fixup also completes Task 4's Dispose work — Task 4 will be marked complete since this commit does its full job. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com> |
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0d96716825 |
phase(N.5) Task 3: TextureCache bindless GetOrUpload + parallel cache
Adds three Bindless variants (GetOrUploadBindless, GetOrUploadWithOrigTextureOverrideBindless, GetOrUploadWithPaletteOverrideBindless) that decode + upload via UploadRgba8AsLayer1Array (Texture2DArray) and cache in three new dictionaries that mirror the legacy three-cache structure. Each entry stores both the GL texture name (for Dispose cleanup in Task 4) and the resident bindless handle. Constructor gains optional BindlessSupport param; null keeps backward compat. EnsureBindlessAvailable throws InvalidOperationException if Bindless* methods are called without BindlessSupport (fail-fast vs silent zero handle that would produce GPU faults). Dispose extended to make handles non-resident before deleting the underlying Texture2DArray names (bindless handles must be made non-resident before the texture is deleted; skipping this causes GPU faults on driver cleanup). Marker test in TextureCacheBindlessTests documents the throw contract for future engineers; real bindless integration is verified at Task 14's visual gate. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com> |
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0b73875d39 |
phase(N.5) Task 2 fixup: name TexImage3D depth + border arguments
Code quality review caught that the TexImage3D call dropped the depth: and border: named arguments specified in the plan. The bare positional `1, 0` is hard to disambiguate from the surrounding 10 parameters. Adds them back, no runtime change. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com> |
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f48a6cf65c |
phase(N.5) Task 2: parallel Texture2DArray upload path in TextureCache
Adds UploadRgba8AsLayer1Array — uploads pixel data as a 1-layer Texture2DArray. Existing UploadRgba8 (Texture2D) untouched, so legacy callers (StaticMeshRenderer, InstancedMeshRenderer, ParticleRenderer, WbDrawDispatcher's pre-rewrite path) keep working unchanged. Required for Task 3's Bindless* methods which need the Texture2DArray target so the WB modern shader can sample via sampler2DArray. Same surface may be uploaded both ways during the N.5/N.6 transition; doubling is bounded and acceptable. After N.6 retires legacy renderers entirely, the legacy UploadRgba8 becomes unused and is deleted. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com> |
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573526dae5 |
phase(N.4): WbDrawDispatcher perf pass — sort, cull, hash memoization
Four small wins on top of the grouped-instanced refactor. 1. Drop unused animState lookup. Was a side-effect-free _entitySpawnAdapter.GetState call per per-instance entity, made redundant by the Issue #47 fix that trusts MeshRefs. 2. Front-to-back sort opaque groups. Squared distance from camera to each group's first-instance translation; ascending sort. Lets the GPU's depth test reject fragments behind closer geometry — real win on dense scenes (Holtburg courtyard, Foundry interior). 3. Per-entity AABB frustum cull. 5m-radius AABB check per entity before walking parts. Skips work for distant entities even when their landblock is partially visible. Animated entities (other characters, NPCs, monsters) bypass — they always need per-frame work for animation regardless. Conservative radius covers typical entity bounds; large outliers stay landblock-culled. 4. Memoize palette hash per entity. TextureCache.HashPaletteOverride is now internal; new GetOrUploadWithPaletteOverride overload takes a precomputed hash. The dispatcher computes it ONCE per entity and reuses across every (part, batch) lookup, avoiding the per-batch FNV-1a fold over SubPalettes. Trees / scenery without palette overrides skip entirely (palHash stays 0). Visual output unchanged; FPS up further, especially in dense scenes. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com> |
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c02c307bee |
phase(N.4) Task 17: EntitySpawnAdapter for server-spawned per-instance content
Routes server-spawned (CreateObject) entities through the per-instance rendering path. Filter: ServerGuid != 0. Atlas-tier entities (procedural, ServerGuid == 0) flow through LandblockSpawnAdapter (Task 11) instead. For entities with PaletteOverride set, walks each MeshRef.SurfaceOverrides map and calls TextureCache.GetOrUploadWithPaletteOverride to pre-warm the palette-composed GL texture before the first draw. Surfaces not in the SurfaceOverrides map (i.e. whose ids are only known after opening the GfxObj dat) are decoded lazily by the draw dispatcher on first use, consistent with StaticMeshRenderer. Builds AnimatedEntityState per server-guid via injected sequencer factory (Func<WorldEntity, AnimationSequencer>). The factory decouples the adapter from DatCollection so tests pass a stub lambda without a GL context. OnRemove releases per-entity state. Unknown guids no-op. Introduces ITextureCachePerInstance: thin seam interface over the palette decode path so EntitySpawnAdapter tests can use a CapturingTextureCache mock without constructing a GL context. TextureCache implements it. Adjustment 4 documented in source comments: WorldEntity does not currently expose HiddenPartsMask or AnimPartChanges (they are consumed upstream in the network layer before the WorldEntity is built). HideParts / SetPartOverride calls are placeholder TODO'd for when those fields are promoted. Wired into GpuWorldState.AppendLiveEntity (OnCreate) and RemoveEntityByServerGuid (OnRemove). Constructed in GameWindow under the ACDREAM_USE_WB_FOUNDATION flag alongside LandblockSpawnAdapter. Sequencer factory captures _dats + _animLoader at construction time; falls back to an empty Setup + MotionTable via NullAnimLoader when dats are unavailable. 10 new tests: server-spawn routing, atlas-tier skip, palette decode pre-warm (with and without surface overrides), OnRemove lifecycle, unknown-guid noop, multi-entity isolation. All pass; 8 pre-existing failures unchanged. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com> |
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0a67254c5e |
refactor(N.3): thread isAdditive + substitute 5 decode methods with WB TextureHelpers
Task 2 — isAdditive threading: SurfaceDecoder.DecodeRenderSurface now accepts isAdditive parameter. A8/CUSTOM_LSCAPE_ALPHA format splits: - isAdditive=true: R=G=B=A=val (terrain alpha, additive entity textures) - isAdditive=false: R=G=B=255, A=val (non-additive entity textures) TextureCache passes surface.Type.HasFlag(SurfaceType.Additive). TerrainAtlas passes isAdditive:true (alpha masks always replicate). Aligns with WB ObjectMeshManager dispatch logic. Task 3 — WB body substitution + new formats: INDEX16, P8, A8R8G8B8, R8G8B8, A8 now delegate to TextureHelpers.FillIndex16/FillP8/FillA8R8G8B8/FillR8G8B8/ FillA8/FillA8Additive. Validation + DecodedTexture wrapping stays ours. X8R8G8B8, DXT1/3/5, SolidColor remain our implementations (no WB equiv). Bonus: R5G6B5 + A4R4G4B4 formats now handled (previously fell to magenta). 9 conformance tests pass. Build 0 errors. Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com> |
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ec1bbb4f43 |
feat(vfx): Phase C.1 — PES particle renderer + post-review fixes
Ports retail's ParticleEmitterInfo / Particle::Init / Particle::Update
(0x005170d0..0x0051d400) and PhysicsScript runtime to a C# data-layer
plus a Silk.NET billboard renderer. Sky-PES path is debug-only behind
ACDREAM_ENABLE_SKY_PES because named-retail decomp confirms GameSky
copies SkyObject.pes_id but never reads it (CreateDeletePhysicsObjects
0x005073c0, MakeObject 0x00506ee0, UseTime 0x005075b0).
Post-review fixes folded into this commit:
H1: AttachLocal (is_parent_local=1) follows live parent each frame.
ParticleSystem.UpdateEmitterAnchor + ParticleHookSink.UpdateEntityAnchor
let the owning subsystem refresh AnchorPos every tick — matches
ParticleEmitter::UpdateParticles 0x0051d2d4 which re-reads the live
parent frame when is_parent_local != 0. Drops the renderer-side
cameraOffset hack that only worked when the parent was the camera.
H3: Strip the long stale comment in GfxObjMesh.cs that contradicted the
retail-faithful (1 - translucency) opacity formula. The code was
right; the comment was a leftover from an earlier hypothesis and
would have invited a wrong "fix".
M1: SkyRenderer tracks textures whose wrap mode it set to ClampToEdge
and restores them to Repeat at end-of-pass, so non-sky renderers
that share the GL handle can't silently inherit clamped wrap state.
M2: Post-scene Z-offset (-120m) only fires when the SkyObject is
weather-flagged AND bit 0x08 is clear, matching retail
GameSky::UpdatePosition 0x00506dd0. The old code applied it to
every post-scene object — a no-op today (every Dereth post-scene
entry happens to be weather-flagged) but a future post-scene-only
sun rim would have been pushed below the camera.
M4: ParticleSystem.EmitterDied event lets ParticleHookSink prune dead
handles from the per-entity tracking dictionaries, fixing a slow
leak where naturally-expired emitters' handles stayed in the
ConcurrentBag forever during long sessions.
M5: SkyPesEntityId moves the post-scene flag bit to 0x08000000 so it
can't ever overlap the object-index range. Synthetic IDs stay in
the reserved 0xFxxxxxxx space.
New tests (ParticleSystemTests + ParticleHookSinkTests):
- UpdateEmitterAnchor_AttachLocal_ParticlePositionFollowsLiveAnchor
- UpdateEmitterAnchor_AttachLocalCleared_ParticleFrozenAtSpawnOrigin
- EmitterDied_FiresOncePerHandle_AfterAllParticlesExpire
- Birthrate_PerSec_EmitsOnePerTickWhenIntervalElapsed (retail-faithful
single-emit-per-frame behavior)
- UpdateEntityAnchor_WithAttachLocal_MovesParticleToLiveAnchor
- EmitterDied_PrunesPerEntityHandleTracking
dotnet build green, dotnet test green: 695 / 393 / 243 = 1331 passed
(up from 1325).
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
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1d54880213 |
sky(phase-8): retail-faithful night sky + README refresh
Iteration on the sky rendering pipeline to restore stars/moon visibility
at night and fix washed-out grey daytime clouds. Key fixes:
* sky.frag: disable fog-mix on sky meshes. Retail's keyframe FogEnd
(0..400m at midnight, up to 2400m during day) is calibrated for
terrain; sky meshes are authored at radii 1050-14271m which sits
past FogEnd universally, causing every sky pixel to saturate to
fogColor (dark navy). Stars, moon, dome texture all got
obliterated. The horizon-glow trade-off is noted in the shader
comment; research item to find retail's sky-specific fog range
later.
* SkyRenderer + sky.frag: promote rep.Luminosity into uEmissive so the
vertex lighting saturates properly for bright keyframes. Retail's
FUN_0059da60 non-luminous path writes rep.Luminosity into
material.Emissive via the cache +0x3c slot; we were instead using
it as a post-fragment multiply which could only dim, never brighten.
Net effect: daytime clouds now render saturated white, dome dims
correctly at night (rep.Luminosity=0.11 → Emissive=0.11), stars
and moon unchanged.
* terrain.vert: MIN_FACTOR 0.08 -> 0.0 per retail FUN_00532440 decompile
(DAT_00796344 ambient-floor = 0.0). Back-lit terrain now falls to
pure ambient rather than getting an 8% sun floor.
New research / tooling (no runtime impact):
* docs/research/2026-04-24-lambert-brightness-split.md — retail's
ambient-brightness formula pinned from PE .rdata read + live
RetailTimeProbe capture: effAmbBright = AmbBright + |sunDir| * 0.2
where scale constant 0x0079a1e8 = 0.2f exactly.
* docs/research/2026-04-23-lightning-real.md — research note on the
dat-baked PhysicsScript-driven lightning path (Rainy DayGroup has
explicit PES-triggered flash SkyObjects with 5ms time windows).
* Corrections stapled to sky-decompile-hunt-{B,C}.md: DAT_00842778 is
DirColor, DAT_0084277c is AmbColor (the hunt docs had the swap
backwards).
* tools/RetailTimeProbe/Program.cs: extended with pid=NNNN selector,
sky global probe (DirColor/AmbColor/AmbBright/sunDir/cache.amb),
and the 0x0079a1e8 scale-factor readout.
* tools/SkyObjectInspect/: throwaway dat-inspector built by the Opus
deep-dive agent. Identified GfxObj 0x010015EF as the stars layer
(A8R8G8B8 128x128 texture, 4% bright-pixel ratio).
* src/AcDream.App/Rendering/TextureCache.cs: per-texture alpha
histogram dump under ACDREAM_DUMP_SKY=1 for diagnosing "are the
clouds decoded with proper alpha" type questions.
README: rewrite to reflect current state (playable pre-alpha rendering
Dereth with animated characters, day-night cycle, weather, etc.)
instead of the stale "Phase 0 dat inventory only" description.
All 742 tests green.
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733f8ff601 |
feat(net+app): SubPalette overlays applied to palette-indexed textures (Phase 5b)
Implements the other half of ObjDesc: SubPalettes (palette-range
overlays) that repaint palette-indexed textures with per-entity color
schemes. Ported algorithm from ACViewer Render/TextureCache.IndexToColor
after the user pointed out I was prematurely implementing from scratch
instead of checking all the reference repos.
The Nullified Statue of a Drudge sends (setup=0x020007DD with a drudge
GfxObj animPart replacing part 1, plus 2 texChanges targeted at part 1,
plus 1 subpalette id=0x04001351 offset=0 length=0). The TextureChanges
swap fine detail surfaces; the SubPalette with length=0 ("entire palette"
per Chorizite docs) remaps the drudge's flesh-tone palette to stone.
Without this commit, the statue looked like a normal flesh drudge
because palette-indexed textures decoded with the base flesh palette.
Added:
- Core/World/PaletteOverride.cs: per-entity record carrying
BasePaletteId + a list of (SubPaletteId, Offset, Length) range
overlays. Documents the "offset/length are wire-scaled by 8"
convention and the "length=0 means whole palette" sentinel.
- WorldEntity.PaletteOverride nullable field. Per-entity (same across
all parts), in contrast to MeshRef.SurfaceOverrides which is per-part.
- TextureCache.GetOrUploadWithPaletteOverride: new entry point that
composes the effective palette at decode time. Composite cache key
is (surfaceId, origTexOverride, paletteHash) so entities with
equivalent palette setups share the GL texture.
- ComposePalette: ports ACViewer's IndexToColor overlay loop:
for each subpalette sp:
startIdx = sp.Offset * 8 // multiply back from wire
count = sp.Length == 0 ? 2048 : sp.Length * 8 // sentinel
for j in [0, count):
composed[j + startIdx] = subPal.Colors[j + startIdx]
Critical detail: copies from the SAME offset in the sub palette, not
from [0]. Both base and sub are treated as full palettes sharing an
index space.
- StaticMeshRenderer.Draw: three-way switch on (entity.PaletteOverride,
meshRef.SurfaceOverrides) picks the right TextureCache path:
- Both → palette override (it handles origTex override internally)
- Only tex override → GetOrUploadWithOrigTextureOverride
- Neither → plain GetOrUpload
- GameWindow.OnLiveEntitySpawned: builds PaletteOverride from
spawn.BasePaletteId + spawn.SubPalettes when the server sent any.
Reference note: the user asked "but I mean THIS MUST BE IN WORLDBUILDER"
which was the right push. WorldBuilder is actually a dat VIEWER and its
ClothingTableBrowserViewModel is a 10-line stub — it doesn't apply
palette overlays because it doesn't need to. The actual algorithm lives
in ACViewer (a MonoGame character viewer), which I should have checked
earlier. CLAUDE.md updated with a standing rule: always cross-reference
all four of references/ACE, ACViewer, WorldBuilder, Chorizite.ACProtocol,
plus holtburger. A single reference can be misleading; the intersection
is usually the truth.
Tests: 77 core + 83 net = 160, all green.
Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
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b69d776179 |
feat(net+app): TextureChanges applied via Surface→OrigTex resolution (Phase 5a)
Finishes the TextureChange half of ObjDesc. Characters' clothing now
renders with correct per-part textures (user-verified "looks good"
after previous "partial coverage" / "wrong clothes"). The Nullified
Statue still looks like a flesh-colored drudge because the statue's
color comes from SubPalettes (palette-indexed texture recoloring),
which is the remaining major Phase 5 piece.
The first attempt at TextureChange application was silently broken by
an ID-type mismatch: the server encodes OldTexture/NewTexture as
SurfaceTexture (0x05XXXXXX) ids, but my sub-meshes are keyed by
Surface (0x08XXXXXX) ids. The override dict was keyed by one type
and looked up by the other, so TryGetValue never hit and no override
actually applied.
Diagnosed via Phase 1 systematic debugging with resolve-level logging:
live: spawn +Acdream texChanges=20
live: texChange part=0 old=0x05000BB0 new=0x0500025D
...
live: resolve part=0 surface=0x08000519 origTex=0x05000BB0 [MATCH]
live: resolve part=0 surface=0x0800051C origTex=0x05000CBE [MATCH]
... 10/10 lines [MATCH]
The [MATCH] lines proved the server's OldTexture IS reachable via a
Surface→OrigTextureId lookup, just needed keying by the right value.
Fix:
- TextureCache.GetOrUploadWithOrigTextureOverride(surfaceId, origTexOverride):
loads the base Surface dat for its color/flags/palette, but
substitutes the override SurfaceTexture id in the decode chain.
Caches under a (surfaceId, origTexOverride) composite key.
- MeshRef.SurfaceOverrides is now Dictionary<uint, uint> keyed by
Surface id, value = replacement OrigTextureId. Null means no
overrides.
- GameWindow.OnLiveEntitySpawned now does TWO passes when texture
changes are present:
1. Group the raw server changes by PartIndex into (oldOrigTex →
newOrigTex) dicts
2. For each affected part's post-animPartChange GfxObj, iterate
its Surfaces list, resolve each Surface → OrigTextureId, and
if that matches a raw change's oldOrigTex, write an entry
Surface id → newOrigTex into the final override map
- StaticMeshRenderer.Draw: when sub-mesh surface id has an override,
call GetOrUploadWithOrigTextureOverride instead of GetOrUpload.
Verified live: +Acdream's clothing renders correctly, NPCs are
"much better" (characters previously naked are now dressed). Statue
has the full mechanical pipeline working (resolve diagnostic shows
2/2 Surfaces [MATCH] for the statue's override dict) but its visible
color comes from the separate SubPalette overlay that isn't wired yet.
Also added a statue-targeted diagnostic block that dumps its full
ObjDesc contents (texChanges + subPalettes + animPartChanges) by
name match, which is how I traced the Nullified Statue of a Drudge's
specific ObjDesc. Lives under `if (isStatue && ...)` so normal logins
aren't spammed.
Cross-referenced against two new references this session:
* references/Chorizite.ACProtocol (cloned from github.com/Chorizite/
Chorizite.ACProtocol.git on user's suggestion) — confirms the
ObjDesc field order and PackedDword-of-known-type convention.
* references/WorldBuilder/... (already in repo) — confirms the
Surface→OrigTexture→SurfaceTexture→RenderSurface chain and the
P8/INDEX16 palette decode path.
Tests: 77 core + 83 net = 160, all green.
Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com>
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cc55c3f812 |
fix: heightmap transpose + solid-color + translucency + clipmap textures
Three root causes found via systematic debugging after the user reported that the |
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dc60405ebc |
fix(textures): palette-indexed surfaces + alpha cutout shader
Addresses the 'doors, windows, and alpha-keyed parts render bright pink' issue the user observed after the Phase 2a visual checkpoint. SurfaceDecoder gains a second overload taking an optional Palette parameter. When the render surface format is PFID_INDEX16 and a palette is supplied, each 16-bit value in SourceData is treated as an index into Palette.Colors (a List<ColorARGB>) and the corresponding ARGB color's channels are written to the output buffer. The original no-palette overload is preserved so the Task 3 unit tests that confirm INDEX16 -> magenta fallback still describe their behavior correctly (INDEX16 without a palette still returns magenta). TextureCache now resolves the RenderSurface's DefaultPaletteId via the dats and passes the resulting Palette (or null) to the decoder. mesh.frag adds an alpha cutout: fragments with sampled alpha < 0.5 are discarded. Without this, transparent regions of alpha-keyed textures (doors, windows, foliage cutouts) would render as opaque rectangles using the texture's background color. This is the standard alpha-tested approach, simpler than full alpha blending and matches how AC's original client rendered these surfaces. Co-Authored-By: Claude Opus 4.6 (1M context) <noreply@anthropic.com> |
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cefc689ba8 | feat(app): add TextureCache for Surface→GL texture handle caching |