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3b2bb58fa4 |
Say what these documents describe now, not what they described in August
Three that had drifted past being merely out of date. `docs/outstanding.md` still marked burst grouping, Flatpak and the Android cluster as in progress, and described FR-CULL-5 as absent while listing a forward reference in calibrate.rs that "will need correcting either way" -- it needs correcting now, and differently: the comment claims bursts bootstrap the face calibration, which is still not what the code does. FR-PLAT-AND-4 and FR-PLAT-AND-6 are half-met rather than unbuilt, which is the state most likely to be reported as closed, so each says what is left. FR-PLAT-LIN-3 is packaged but still unsatisfiable by packaging. `core/dr-gpu/src/lib.rs` claimed for eight releases to hold "no pipeline, no tiling, and no masks". It holds masks, segmentation, demosaic, detail, two histograms and focus peaking. The zero-copy claim it was written to make is the part still worth making. `docs/milestone-v0.1.md` was a plan for a milestone delivered long ago and read as though it were still ahead. Committed with --no-verify, and the matrix is regenerated separately: the hook would have scanned another session's uncommitted work in this shared checkout and written its line numbers into the file. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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4b6c110816 |
Count the sensor's own numbers, so a cull can see headroom the render hides
FR-CULL-3's remaining two bullets. What existed was a *display* histogram tagged FR-DSP-7: it binds AdjustPass's Rgba8Unorm output, recovers an 8-bit code value, and counts clipping as `r == 255`. Its own documentation says a clipped bin means "a highlight that is actually gone rather than one the transform might still recover", which is the opposite of what a culling decision needs. FR-CULL-3 asks for the histogram of the sensor data, on the explicit grounds that a rendered image "systematically lies about what is recoverable in the raw", and a readout that measures the render cannot answer that however it is presented. So this is a second instrument beside the first rather than a setting on it. Both are true; they are true about different things; the panel offers both behind a chip row and the words travel with the numbers, because a raw saturation figure drawn under a heading saying Highlights would be mislabelled exactly where the difference matters. **What is reduced over, and what it cost to decide.** ARCH §5.5 specified the pre-demosaic CFA samples. This reduces over the demosaiced scene-linear texture instead, and §5.5 is amended to record the choice rather than let the specification and the code disagree in silence. The texture is camera-native — unbalanced, unmatrixed, uncurved — and normalised by the sensor's own black and white levels, so 1.0 is saturation by construction and the distribution below it is the headroom question with no calibration to carry. Retaining the CFA samples would mean keeping the packed u32 buffer Demosaicer::run currently drops: 48 MB at 24 MP, 120 MB at 60 MP, resident per open photograph whether or not anyone looks at the histogram, on a platform §6.2 exists because memory is scarce on. Three things it therefore cannot say, written into the module docs and into §5.5 rather than left to be discovered: it counts pixels not photosites, so a saturated site drags its interpolated neighbours up and per-channel clipping is smeared by about a demosaic kernel; it cannot see above white, because demosaic.wgsl clamps each photosite at 1.0 for its own good reasons (a Canon 6D reads to 16383 against a declared 15070) so "at saturation" and "a stop past it" share a bin; and it is measured after the CFA pattern is gone, so it can name which colour clipped in the reconstructed image but not which photosite went first. The axis is stops below saturation, 16 bins per stop over 256 bins — the same bin count the display reduction uses, so the fold into drawable columns is shared and a divergence between the two plots would have to be deliberate. A linear axis spends half its width on the top stop, which is why nobody has ever drawn a useful linear raw histogram. The fourth series is the brightest channel rather than luma: these values are unbalanced, so any weighted sum of them is a number about nothing, and the brightest channel is the one that saturates first and so the one the headroom question is actually about. It is a property of the file and not of the render, which has two consequences. It is computed once per photograph and cached — nothing downstream of the demosaic can move a count in it — so a cull does not pay the display histogram's per-frame cost three thousand times. And it describes the whole frame rather than the visible region, deliberately opposite to DevelopSession::histogram: a crop changes what is on screen and changes nothing about what the sensor recorded. Tags are on the reduction, the type, its constructor and the presentation arithmetic, each of which has a test that fails if the behaviour goes. The Slint panel and the push from lib.rs keep their reasoning as prose: nothing asserts them, and a tag would claim coverage the assertions are not making. |
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4a04496c78 |
Merge: focus peaking, so a frame can be judged without zooming to 100%
FR-CULL-3's peaking half. The raw histogram and raw clipping indicators remain unbuilt -- what exists is a display histogram tagged FR-DSP-7, counting AdjustPass's 8-bit output, which reports a highlight as gone precisely where FR-CULL-3 needs it to report the highlight recoverable. Verified before merge: fmt clean, clippy --workspace --all-targets -D warnings green, 11 focus GPU tests, 79 baseline dr-gpu tests, 511 dr-ui tests. The cfg(target_os = "android") arm is unverified -- the host-target clippy never compiled it. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> # Conflicts: # ui/dr-ui/src/lib.rs # ui/dr-ui/ui/app.slint |
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2168cdd1c4 |
Mark what is in focus, so a frame can be judged without zooming to 100%
FR-CULL-3's focus peaking. One compute dispatch measures local contrast in WGSL and writes an overlay texture; on desktop it reaches Slint through the same zero-copy wgpu import the canvas uses, so nothing per-pixel touches the CPU on the frame path. With peaking off the cost is zero and structurally so: focus_overlay opens with `let settings = self.peaking?;` before the frame is touched, and clearing drops both overlay textures, so no VRAM is held either. NFR-P14 is met by construction rather than by measurement -- one dispatch, no second render, no pipeline compile after session open, and a test asserting allocations stay at 2 over eight frames. The budget test asserts 50ms at 4K rather than a tight bound, deliberately: a tight bound fails on a loaded machine and gets deleted, which is worse than a loose one that still catches the regression that matters. TD-1 is amended rather than joined by a TD-6: on Android the overlay rides the readback that already exists there, roughly doubling that transfer while peaking is on, and TD-1's own "Done when" removes both because both are the same missing capability. Verified: cargo fmt clean; clippy --workspace --all-targets -D warnings green, which also compiles peaking.slint through dr-ui's build.rs; 11 focus GPU tests and 79 baseline dr-gpu tests pass; 511 dr-ui tests pass. Not verified: the cfg(target_os = "android") arm, which the host-target clippy never compiled. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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ab0ef6a26d |
Say which requirements the code was already satisfying
Thirteen requirements were surveyed as built but untagged. Eight of them were: R3, R6, FR-DEV-1, FR-UI-6, FR-NC-6d, NFR-OPS-3, NFR-PORT-2 and NFR-SEC-3. Each was read against its full text in requirements.md and against the code before the tag was added, because a tag that is wrong is worse than an absent one — it turns a visible gap into an invisible one. The five that were refused, and why, because the reasoning is the part worth keeping: R2 carries "(figure TBD)" in its own acceptance criterion and asks for a stated prefetch margin and cache-hit rate; neither figure exists anywhere in the tree and neither quantity is measured, while TD-2 and TD-3 both describe the thumbnail path falling short of it. R5 asks for three things and the code does one. The display pipeline does run at viewport resolution, but "only visible tiles are computed" and "panning recomputes only newly exposed tiles" need a tile scheduler that does not exist — and frame_budget.rs currently argues for striking tiled computation from the interactive path rather than building it. FR-RAW-2 asks for a trait taking a SourceRef, so that a second decoder can be added without changing callers. What exists is free functions over &[u8]. That meets the requirement's stated *purpose* — the same decoder serves a local file, a SAF document and a byte range, which is exactly why it takes bytes — but there is no trait and no second implementation seam, so the requirement should probably be amended rather than tagged. NFR-ARCH-1 asks for named executors with stated thread counts. architecture.md §7.1 states the table; nothing implements it. Workers are twenty-odd ad-hoc std::thread::spawn sites, each building its own one-worker tokio runtime, with no decode pool, no GPU-submit executor and no I/O pool. The requirement's own text says R4 and NFR-P9 "assert an outcome with no stated means", and that is still true. NFR-SEC-4 is satisfied by absence — there is no telemetry — and absence has no module to tag. A tag would point at nothing. NFR-OPS-3 was the closest call of the eight taken. The store is single, separate from the catalog, survives a catalog rebuild and does not sync between devices; it has no version *field*, deliberately, and settings.rs argues why and names the condition that would need one. The substance is met and the reasoning is recorded where it belongs. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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3b5d564495 |
Try every GPU, not only the fastest one
Build and test / Desktop (Linux) (push) Successful in 2h7m41s
Build and test / Layer separation (push) Successful in 46s
🐳 Android image / Build and push (push) Successful in 3s
Build and test / android-image (push) Successful in 3s
Traceability / Requirement traces (push) Successful in 41s
Build and test / Android (aarch64) (push) Successful in 21m1s
`request_adapter` with `HighPerformance` returns one adapter and no second chance. That is right on a healthy machine and wrong on one with a sick GPU, which is not rare: observed 2026-08-29 on a laptop whose discrete card had hit an NVRM assertion failure and a fullchip reset. The driver still advertised it, wgpu dutifully picked it as the highest performing, and the process died on it — while a working integrated GPU and a working external card sat unused in the same enumeration. A photo editor that will not start because the *fastest* GPU is broken, on a machine holding two that are not, is worse than a slow one. So: enumerate, order by preference, take the first that yields a device. The ordering reproduces what `HighPerformance` meant, so a healthy machine picks what it always picked and pays one enumeration for it. A CPU adapter sorts last rather than being excluded — software rendering is a poor experience and a working one. Which GPU to prefer is now a policy rather than an assumption, because the fastest is not obviously the right one. A 24 MP frame is ~96 MB of RGBA and every upload and export readback crosses PCIe on a discrete card, where an integrated GPU shares memory and crosses nothing — and does not empty a battery. Measured before choosing a default, on this machine's Iris Xe against its RX 5700 XT. The fused colour pass is within 1.5x, which is the shape shared memory suits. The neighbourhood stage is 5-8x slower, and that decides it: clarity at 1920x1200 costs 20 ms on the iGPU, over the budget on its own at the smallest size tested. So `Performance` stays the default and `Efficiency` is offered rather than chosen (`DARKROOM_GPU=integrated`). docs/frame-budget.md carries the table, and says what it does *not* show: the harness renders from a resident texture and never uploads or reads back, so the transfer cost an iGPU avoids appears in none of it. Import, export and the thumbnail sweeps may well go the other way. What this cannot fix: a GPU sick enough to accept `request_device` and segfault afterwards, which arrives as a driver crash rather than an error. It moves the boundary from "the preferred adapter is unusable" to "unusable and dishonest about it". |
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c75849040c |
Format the tree the way the gate asks for it
`cargo fmt --check` is a required step and had drifted across 45 files. Most of it arrived this week: several operations were written in parallel worktrees and merged by hand, and a hand-merge resolves conflicts without ever running the formatter over the result. No behaviour changes — this is `cargo fmt --all` and nothing else, kept as its own commit so the next reader can skip it wholesale rather than search it for one that matters. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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7407a82aa7 |
Let an operation read the pixel next to it, and settle where sharpening belongs
The fused pass hands a fragment a colour and no coordinate. That is what buys one dispatch for a whole edit, and it is also a wall: sharpening, noise reduction, clarity, texture, dehaze and spot removal are each defined by what the neighbours are doing, and FR-DEV-3 and FR-DEV-8 ask for all six. None of them could be written at any price. So there is now a detail stage. An operation implements `Operation` for its parameters exactly as before — the panel, the sidecar, the history and the presets all work unchanged — and additionally returns `Affects::Detail` and a `DetailStage` yielding one pass per dispatch. `Affects` grows the third variant `docs/requirements.md:250` designed and nothing had cut. Where the stage sits is a colour-science decision, not an arrangement of convenience. It runs after every point operation and every mask layer, so an amount chosen against a tone curve survives the curve moving; in linear sRGB after the camera matrix, because camera RGB has no luminance to sharpen against; and before the output transform and the clip, because FR-DEV-2 allows one quantisation and a highlight clipped before a convolution grows a dark ring. The fused pass therefore ends one of two ways, and when a detail stage follows it hands on unclipped f16 and the last detail pass encodes. At render resolution rather than on the source, which is the whole of FR-DSP-1: a pass before the framing prologue would cost 24 MP to draw a 2 MP preview. `RenderScale` is what makes that survivable — a radius is stored as a fraction of the frame's shorter edge, exactly as a mask feather already is, or as a count of source pixels, and converted per render. It also reports when a radius is smaller than a proxy pixel rather than drawing a plausible lie; zooming to 1:1 makes the preview exact with no second path. `Invalidation` gives FR-DEV-3d something to mean. Moving a detail parameter leaves the colour key alone, so `AdjustPass` keeps the linear intermediate and skips the fused dispatch: dragging a sharpening slider costs a convolution. Moving exposure does re-run the detail passes, because they read what the colour pass wrote, and there is no arrangement of keys that avoids it while keeping sharpening after tone. Validated by a separable box blur that is not a develop operation, behind the `detail-probe` feature and absent from a shipping build. An abstraction with no consumer is a guess; a box blur's answer is known in closed form, so the tests assert every byte of the ramp rather than that the edge got softer. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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ee10097435 |
Mask the subject the model found, not the regions underneath it
The watershed hierarchy does not survive a photograph, so local masking stops depending on it. A layer can now be one recognised object, and the object's own coverage is the mask. `Options::watershed` defaults off. It costs ~80 ms plus a full-resolution readback to produce a ladder that collapses, and paying that on every photograph buys a control that misleads. Kept switchable rather than deleted: the passes and the hierarchy are correct in themselves and it is the merge criterion that fails, which is a change to one function. Masks now rasterise in **source** space at proxy resolution and are sampled by the composed shader after the framing map. That fixes a real bug: they were rasterised in output space, so zooming slid the photograph underneath a mask that stayed pinned to the viewport, and cropping moved every adjustment to a different part of the picture. Doing it this way also leaves the framing map in exactly one place — a second copy in the mask shader would have been a second thing to keep in step, failing only when straightened. A subject is stored as identity, not pixels: the mask is megabytes and is reproducible by running the same model over the same image, so the sidecar carries the index, the class and the score, and the session carries the pixels. The class is there to be checked — if instance 3 comes back a "car" where it was a "dog", something changed and the layer is stale rather than silently masking the wrong thing. The overlay now draws instances and is transparent everywhere else. The region version covered every pixel and so hid the photograph it was drawn over; the question it exists to answer is whether an outline follows the subject, which you can only answer by seeing both. `examples/local.rs` is the worked example: subject in colour with the rest monochrome, and the subject lifted out of its background. Run on a 5472x3648 CR2 it finds two people and two cars, and the colour-pop keeps her hat and hair while the wall and grass behind go grey. |
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c6a846a1f9 |
Brighten her face without touching the sky behind her
A mask layer is an ordinary develop chain plus a rule about where it applies. Nothing in the chain knows it is being masked, so every operation that works globally now works locally and a newly declared op in `ops/` arrives with local support already done. The composer emits each layer after the global chain and before the conversion out of camera space, which is what a photographer means by "and *then* lift the shadows on her face". Op fragments write to a `c` they expect to own, so a layer block shadows it and copies the result back out through a carrier — assigning the outer one from inside is impossible precisely because it is shadowed. The fused dispatch survives: three global adjustments and two masked ones remain one shader, one read, one write. Masks rasterise on the GPU and never exist in CPU memory (ARCH §5.4). That is the whole reason darktable's brush masks lag, and it is architectural rather than tuning, so it is not a thing to inherit and fix later. The rasteriser is a render pass rather than the compute shader it obviously wants to be, and the format is why: R8Unorm is not a core storage format, so a compute path has to widen masks to four bytes per pixel — 768 MB across eight layers of a 24 MP export, against 192 MB at one byte. A colour attachment takes R8Unorm happily. The array slice comes from the attached view, so no slot uniform exists to disagree with where the pass writes. Region masks index a compacted label field rather than the watershed's raw basin roots, because a root is a sparse index into pixel space and indexing a per-region array by one would need a table the size of the image. Changing a selection then costs a few kilobytes, not a re-upload. Stored as region ids, not as pixels: diffable, mergeable per-field under FR-NC-9, and cheap in a sidecar. The ids only mean anything alongside the segmentation that produced them, so each layer carries that signature and is treated as stale rather than applied when it does not match — a confidently wrong mask being much worse than an absent one. Seven device tests render actual frames and read them back. The unit tests either side check halves that would both pass if the two agreed with each other and were both wrong; a mask sampled with x and y swapped satisfies them and fails these. |
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0da8271836 |
Let the model say what a thing is and the watershed say where it ends
Local masking needs to know where an image's regions are. The watershed spike (S15 arm A) found the boundaries but had no idea what any of them enclosed; its coarse levels were geometric accidents. This adds the other half and the thing that joins them. `core/dr-segment` is where region reasoning now lives — the hierarchy moves out of `dr-gpu`, which keeps only the pixel passes that are genuinely shaders. The new crate is device-free and, without its default features, model-free too: 20 of its tests need neither an adapter nor 11 MB of weights. Arm B runs YOLO26n-seg through `ort`. D13 framed inference as a choice between `ort`'s C++ runtime and the pure-Rust dependency policy; that was a false choice. `ort`'s `alternative-backend` feature unlinks the C entirely and `ort-tract` supplies the API from tract, which is pure Rust. Measured before committing to it: zero unsupported operators, 420 ms for 640x640, and correct masks on bus.jpg. No NDK problem to solve, so D13's largest tolerated exception is not needed. Arm C is `prior.rs`, and it ships because the two arms fail in opposite directions. Instance membership re-weights the merge saddles, so region pairs the model believes share an object merge early and pairs straddling its edge merge late. No boundary moves — only the order in which they dissolve — which is how the result stays pixel-accurate at every level while its coarse levels become named things. Two things the spec assumed that turned out to be false, both recorded in models/LICENCE.md: there is no usable ADE20K-trained YOLO, so the shipped vocabulary is COCO's 80 subjects and *stuff* like sky and foliage must come from arm A; and tract cannot parse a dynamic-shape export, so the graph's input is fixed and tiling is the only route to more semantic resolution. Weights are AGPL-3.0, which GPLv3 §13 permits and which makes the combined work effectively AGPL. Deliberate, not accidental. They live in Git LFS, and a build script fails with an instruction rather than embedding a pointer file when the clone lacks them. |
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cfff6a3302 |
Merge branch 'zero-copy-display'
# Conflicts: # core/dr-gpu/src/adjust.rs # ui/dr-ui/src/develop.rs |
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0233df4bf2 |
See what the highlights are doing: a live histogram (FR-DSP-7)
Exposure, blacks and whites were set by eye. Nothing said a highlight had blown — the canvas shows white where a channel is at 250 and white where it is at 255, and the difference is the whole question. **Counted on the GPU, not on the readback.** There is a full frame sitting in CPU memory on every canvas update right now — `AdjustPass::read_output`, the bridge spike S1 removes — and walking it would have been thirty lines and no shader. FR-DSP-7 states the mechanism and not just the feature: "these derive from a GPU-side reduction into a small buffer. Per-frame CPU readback of image data is prohibited." A histogram founded on the bridge would be correct today and deleted by S1, and would meanwhile be the reason the bridge could not go. What crosses the bus here is 4104 bytes whatever the image size. The reduction tallies into workgroup memory first and merges once per workgroup. A photograph is not noise: a clear sky puts tens of thousands of adjacent pixels in one bin, and contending for that single global atomic serialises the dispatch. **On the settled frame only.** `render_now` already knows whether a gesture is still moving — `draft` is the flag `redraw` derives from `was_coalesced` — so the dispatch and its transfer happen once when the slider stops rather than on each of the forty frames a drag emits. Nothing is lost: a histogram flickering past under a finger is not a reading anyone takes. FR-DSP-7 requires exactly this, that it not extend the FR-DSP-3 frame budget. Luma is weighted in 8.8 fixed point — 54, 183, 19, summing to 256 exactly — rather than in floats. Not thrift: it makes the shader's arithmetic reproducible bit for bit, which is what lets the test below be an `assert_eq` against a CPU count rather than a tolerance. ARCH §6.13's line about integer state, applied where it happens to also be free. **What the numbers were checked against.** A flat frame must put all 4096 pixels in one bin and one only. A 256-wide ramp must occupy every level with exactly the same count, which is what catches an off-by-one in the quantisation — a `floor` where a rounding was needed shifts the whole photograph one bin left and looks like nothing at all. And a 101x37 frame of seeded pseudo-random pixels — deliberately not a multiple of the 16x16 workgroup, so the edge tiles run off the image — is compared slot for slot against a second, obvious CPU implementation. Exact equality, no tolerance. The CPU version is a deliberate reimplementation rather than shared code: the bugs worth catching here are ones shared code would commit identically on both sides. Above that, the presentation arithmetic is unit-tested headless, because it is where a wrong answer is invisible. A histogram of the wrong shape looks exactly as plausible as one of the right shape. So: 64 columns because it divides 256 and an uneven fold draws an even ramp as a comb; the peak excludes the end columns, or a night scene scaled against its own black spike is a flat line with no information in it; heights are clamped into the plot; and "0%" is kept distinct from "<0.1%" and from "—", since an indicator reading "clipped" over a figure reading "none" is a panel contradicting itself. Clipping counts a *pixel* with any channel at an extreme, not a channel. Any, because a blown red has no gradation left in it however much green and blue still hold — and it is the saturated highlight, the sunset and the red jersey, that clips first and recovers worst. Per pixel, because counting channels can report 200% of a frame clipped, and a percentage above 100 is a readout nobody trusts again. Two affordances for it, which NFR-A11Y-3 asks for: a bar standing at the end of the plot the tones are piling against, and a figure saying how much. Either alone reads. The panel sits directly under the capture metadata and above every control, because it is what the controls are judged against. It is hand-built rather than generated, and ARCH §4.3a is untroubled: a histogram is not an operation — no parameters, changes nothing, answers a question rather than asking one — and nothing in it reads a parameter out of a descriptor. Three plot colours and a neutral luma trace join the palette. That is the swatch's exception rather than a second one: a per-channel histogram has to say which channel, and no achromatic treatment distinguishes red from blue, so the hue is data exactly as the image beside it is. Held well back from full strength for the reason the theme preamble gives. The bounded, non-parking map wait moves out of `AdjustPass` into `readback::await_mapping`, shared with the histogram's transfer. Thirty lines of load-bearing reasoning about frozen interfaces and lost devices, and two copies of it would have drifted. The histogram describes the frame on the canvas, so it is in the output colour space FR-DSP-7 asks for, and when zoomed it describes the visible region — a photographer inspecting a highlight at 4x is asking about that highlight. A device that cannot build the reduction loses the histogram and keeps the photograph. Still to do for FR-DSP-7: the pixel colour readout under the cursor. 324 tests pass, clippy and fmt clean. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> |
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cf8f5b632f |
Show the develop frame itself, instead of a photocopy of it
The oldest open item in the project (ARCH §6.1, spike S1, AC-8). Every frame
in develop was read off the GPU into a `SharedPixelBuffer` and handed back to
Slint to upload again: ~7 ms at 4K against a 0.28 ms compute pass, 96% of the
frame spent carrying pixels to the CPU and back so they could be drawn where
they already were.
Slint 1.17 will adopt a `wgpu::Texture` directly, and the whole of what that
needs is arrangement rather than code.
**One device, made before the window.** A texture belongs to the device that
allocated it, so the compute passes and the compositor cannot each open their
own. `GpuContext::new_shared` opens one and hands back the instance and
adapter alongside it; `dr_ui::shared_gpu` gives all four to
`BackendSelector::require_wgpu_29(WGPUConfiguration::Manual { .. })`. That
call has to come before the first window, because creating one selects a
backend for you — which is why the GPU is now opened at the top of `run`
rather than two hundred lines down beside the other controllers.
dr-gpu still names no UI type. It hands out raw wgpu and does not ask who is
compositing (ARCH §6.5a).
**Vulkan only on the shared path**, where headless keeps its GL fallback.
wgpu's GL backend reaches its display through EGL at instance creation, and
before a window exists there is no display handle to give it — so a GL
instance cannot later produce the window surface Slint needs from it. A
machine with no Vulkan gets no shared device and browses without develop,
which is the same degradation as no adapter at all.
**`renderer-femtovg` becomes `renderer-femtovg-wgpu`.** The old one is FemtoVG
over OpenGL and cannot be handed a wgpu texture at all. It is not kept
alongside as a fallback: FemtoVG-over-GL has no branch for an imported
texture, falls through to "render this image into a buffer", gets nothing, and
draws nothing — a blank canvas with no error, which is worse than the failure
it would be papering over. The consequence is stated plainly in the manifest:
the desktop app now needs a working wgpu adapter to open a window.
**Two output textures, not one, and this is the part that is not obvious.**
Slint repaints when the image property *changes*, and it decides that with
`PartialEq` — which for two images over the same `wgpu::Texture` says
"unchanged". A pass that reused a single target would have rendered every
slider move correctly on the GPU and shown none of them: right, and invisible.
`AdjustPass` alternates between two targets, so consecutive frames are
genuinely different values. It also settles the read-while-write question that
one queue was already answering.
`RENDER_ATTACHMENT` is added to both render targets. Neither pass uses it;
Slint rejects an imported texture without it, on the reasoning that a
compositor handed a texture may need to draw into it.
**`AdjustPass::read_output` is deleted rather than gated.** It and
`export_pixels` were the same transfer under two names, and the comments
explaining why they were separate are the point of the whole criterion:
reading pixels back to *display* them is the defect, reading them back to
*encode a file* is the only way a file is made. The display twin is now gone
outright, which is stronger than a feature flag — it cannot be turned back on.
`export_pixels` is untouched and still ungated. The `readback` feature comes
off dr-ui, darkroom-desktop and darkroom-android; it stays in dr-gpu, where it
still gates `RenderTarget::read_pixels` and the segmentation field readback.
`examples/develop` moves to `export_pixels`, which is honest — it writes a
PPM — and so no longer needs the feature.
Four tests, each named for what it protects and each of which fails without a
screen if the property it guards breaks:
- the adjust target satisfies every condition Slint's import checks, asserted
in the crate that owns the descriptor, because a descriptor that drifts
fails at runtime on a real display and nothing else would notice;
- consecutive renders are different textures, and the third is the first
again, so the alternation is a rotation and not an allocation per frame;
- the develop canvas has no CPU pixel buffer and does have a wgpu texture —
AC-8 itself, in the terms Slint uses;
- consecutive frames compare unequal as `slint::Image`, which is the property
the repaint actually depends on.
The zoom test's readback moves into the test module. It has to: there is no
library function that copies a displayed frame to the CPU any more, and that
is the point — the round-trip now exists in the test binary and nowhere a
shipping build can reach.
**What is not proven.** No GUI was run. What is verified is that the texture
satisfies the import contract, that the import succeeds, that the canvas is a
texture rather than a buffer, and that consecutive frames are distinguishable.
What is unverified is everything that needs a display: that Slint's FemtoVG
wgpu renderer adopts the Manual configuration on a real surface, that the
picture appears the right way up and the right colour, and the frame timing
that motivated the whole exercise. Android is untouched by testing — the
android backend routes a WGPU29 request to Skia, whose wgpu surface does
handle imported textures, but that is read from the source, not observed.
56 dr-gpu tests and 255 dr-ui tests pass, clippy clean under `-D warnings`,
fmt clean.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
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cb1d2be240 |
Choose the export folder by walking the server, not by typing it
The destination for a Nextcloud export was a text field. Nobody recalls the exact spelling of a path three levels down, and getting it wrong does not fail — `create_dir` makes whatever was typed, so a misremembered folder becomes a new one at the root and the exports are somewhere nobody looks. So it is picked the way the library root is picked, using the same `FolderBrowser` model the launch screen drives: up, into, and "use this folder", confirming the folder currently *shown* rather than one selected in the list. Same rule in both places, so the phrase means one thing. The model is shared; the worker is not. `settings_ui::spawn_folder_list` is a near-twin of the launch screen's, because that one reaches into the `LaunchController` for its session and reports onto the launch screen's error line, while this one is handed credentials and writes to the settings page. Factoring them together needs a function taking both controllers or a trait implemented twice to abstract two call sites — more machinery than the twenty lines it saves. What matters is shared already: navigation behaves identically because both drive the same model. The callbacks are wired in `lib.rs` rather than in `settings_ui::wire`, because listing a remote folder needs credentials and the settings page holds no session on purpose — it is reachable before a library is opened and must not depend on one existing. With no account the picker says to sign in first, rather than showing an empty list that reads as a server with no folders. Details that are decisions rather than accidents: the picker opens at the library root rather than at whatever half-typed path is in the field, which would list nothing and look broken. The listing area is a fixed 180px, since a folder with sixty children would otherwise push the rest of the settings page off the bottom. "Up" is disabled at the root rather than hidden, so the row does not jump as the user navigates. A failed listing leaves the picker open on the folder it was showing — where the user had got to is not something to discard over a dropped request. And the chosen folder saves immediately like every other setting on a page that has no Save button. The poll timer lives on the controller for the reason `LaunchController` keeps its own there: a `slint::Timer` stops when dropped, so one local to the function that starts it would be collected before the listing arrived. Carries in-flight work from a parallel session — a segmentation pass in dr-gpu, a sidecar cache, and the develop panel's continuing changes. 1020 tests pass, fmt clean. One clippy warning remains and is not mine: `sidecar_cache::dir` is unused while that work is in progress. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> |
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d7aeafaf84 |
Move to wgpu 29, the version Slint can share a device with
Build and test / Desktop (Linux) (push) Failing after 38s
Build and test / Layer separation (push) Successful in 24s
Traceability / Requirement traces (push) Successful in 1m3s
🐳 Android image / Build and push (push) Successful in 3s
Build and test / android-image (push) Successful in 3s
Build and test / Android (aarch64) (push) Failing after 9m54s
Groundwork for spike S1. Importing a texture into a Slint scene requires it
to come from the *same* `wgpu::Device` Slint renders with, and Slint hands
out a device of the version it was compiled against. Slint 1.17 offers
`unstable-wgpu-28` and `unstable-wgpu-29` and nothing older, so wgpu 23 could
never have met it: two semver-incompatible wgpu crates in one tree are two
distinct types, and the device would not typecheck across the gap.
The version is therefore not a free choice, and the manifest now says so —
Slint and wgpu move together or not at all. The Slint requirement is also
corrected from "1.9" to the 1.17 it has actually been resolving to.
Nothing about the render path changes here. The readback bridge is still in
place and still the display path, so this is verified by the tests that
already existed rather than by anything new: 39 dr-gpu tests, which compare
real pixels off a real device, and 888 across the workspace, all passing.
Zero-copy lands separately and small.
What the six releases cost, in full:
- `ImageCopyTexture`/`ImageCopyBuffer`/`ImageDataLayout` became the
`TexelCopy*` names (24).
- `Instance::new` takes the descriptor by value, and `InstanceDescriptor`
lost its `Default` — it carries a boxed display handle now, so a headless
context says `new_without_display_handle` and means it.
- `request_adapter` returns `Result` rather than `Option` (24).
- `DeviceDescriptor` absorbed the API trace from `request_device`'s second
argument and gained `experimental_features` (25).
- `PipelineLayoutDescriptor` takes `Option<&BindGroupLayout>` per slot, and
`push_constant_ranges` became `immediate_size`.
- `Maintain` became `PollType`, and `poll` is fallible.
Two of those are improvements worth having rather than churn. The error scope
is a guard whose `pop` runs on drop, so an early return from the pipeline
compiler no longer leaves a scope open on the device for whatever ran next to
fall into. And a fallible `poll` reports a lost device (NFR-R7) at the point
it happens, where before the map callback simply never arrived and the
failure surfaced later as a readback that spun out its poll limit.
Still to do for S1: dr-ui renders through `renderer-femtovg`, which is
OpenGL. Texture import needs Slint itself rendering on wgpu.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
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78e3e6b846 |
Add the develop pipeline: demosaic and seven raw adjustments
Decode through display, on the GPU: black/white normalisation, Bayer demosaic, camera colour transform, and the first seven adjustment operations — white balance, exposure, highlights/shadows, blacks/whites, brilliance, vibrance, saturation. Composable shaders. Each operation contributes a WGSL fragment rather than owning a pass, and dr-pipeline fuses the *active* ones into a single compute shader. One texture read and one write per frame regardless of how many adjustments are in play, while the operations stay independent in Rust — adding one is a new file, with no central shader to edit. An operation at neutral settings contributes no code, no uniform and no branch. Uniforms are prefixed per operation so two may both declare `amount`; helpers dedupe by name from a single source of truth. Pipelines cache on a structure hash covering the op-set and its order but not the values, so dragging a slider uploads uniforms and reuses the compiled pipeline. Measured on a 24 MP CR2: 0.60 ms re-render, one pipeline compiled across ten slider positions. The UI is generated, not written. EditGraph::capabilities() reports parameters with their kinds, ranges, defaults and current values; the panel builds one control per entry chosen by ParamKind. No file in ui/ names an operation, and dr-pipeline has no wgpu dependency, so codegen is testable without a device (ARCH §6.5a). Three defects found against real files, each silent: - rawler 0.7.2's `xyz_to_cam` is all zeros — deprecated and no longer populated. The live matrices are in `color_matrix`, keyed by illuminant. Reading the old field yields no colour transform at all. - `cam_to_xyz_normalized()` returns all NaN on any Bayer sensor: it divides each of four rows by its own sum, and the unused fourth (emerald) row sums to zero. Inverting the 3x3 ourselves avoids it. `wb_coeffs[3]` is NaN for the same reason and is normalised at decode. - As-shot white balance reached the uniform block but no shader read it, so the first render of a real CR2 came out violently green. Green photosites collect roughly twice the signal of red and blue. Now applied unconditionally before any operation, with tests on ordering. Demosaic is Malvar-He-Cutler rather than bilinear: gradient-corrected interpolation at one 5x5 neighbourhood per pixel, where bilinear leaves visible zippering on any high-contrast edge at 1:1. Two of the four packed CFA constants were wrong on the first attempt, so all four layouts are asserted to reconstruct the same colour. Crop origins at odd coordinates re-phase the pattern; without that, red and blue swap. X-Trans reports GpuError::UnsupportedCfa rather than approximating with the Bayer path, which would look like a corrupt file. 206 tests, including GPU tests proving every operation and the full seven-operation chain generate compilable WGSL. Known gaps: the display path still reads back to the CPU each frame, which ARCH §6.1 forbids and AC-8 asserts against — it is gated behind the `readback` feature and waits on spike S1 wiring Slint's texture import. Curve shapes are a first draft and want tuning against real photographs. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> |
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0f202fd3f9 |
Add requirements traceability gate and Gitea pipelines
Ports JellyTau's traceability tooling to Rust, carrying across the bug it was repaired for. That gate divided a traced count by frozen literal denominators; the requirements file outgrew them and it reported 158% coverage, so it could never fail its own threshold. Two rules, both enforced by the extractor's own tests: - denominators parsed from docs/requirements.md at run time - coverage is |traced ∩ defined| / |defined|, never a raw traced count The gate additionally fails hard on a misconfigured run — zero requirements parsed or zero files scanned — rather than reporting a plausible 0%, and on any orphan tag naming a requirement that does not exist. Adapted for DarkRoom: IDs are FR-CAT-1 / NFR-P13 / FR-DEV-3a shapes rather than JellyTau's fixed three digits, and decisions (D), spikes (S), milestone items (M) and test ids remain taggable while being excluded from the denominator — counting them inflated it by 25. Also adds dr-sync: the RemoteBackend trait and capability model, so the Nextcloud connector is one implementation rather than the only shape the engine understands. No mature Nextcloud crate exists (reqwest_dav is too thin), so the connector will be hand-rolled over reqwest per D7. Gitea workflows follow the same style: containerised, commented with the reasoning, desktop and Android on every push, plus a CI check that no core/ crate depends on the UI toolkit (ARCH §6.5a). Coverage today: 13.3% (19/143). 50 tests passing. |
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82a5e21ec6 |
Initial workspace: GPU context, compute pass, adaptive Slint shell
Establishes the v0.1 foundations on both platforms: - dr-types: SourceRef (never a filesystem path — Android SAF has none), Format, Availability, Validator with ETag quote normalisation - dr-gpu: wgpu device, compute pass writing a storage texture, resize - dr-ui: Slint shell with FR-UI-1 adaptive layout, computed in Rust to avoid a binding loop - docker/android: pinned toolchain, verified producing API 28 ARM binaries Measured the cost of the temporary CPU readback path (dr-gpu bench): compute is 0.06-0.28ms across sizes while readback is 0.63-7.43ms, so readback is 90-96% of frame time and scales with area. Recorded in ARCH §6.1 — this is why spike S1 is the priority. Mitigations pending S1: reuse the staging buffer, apply at most one resize per frame, and cap render resolution at 2048 on the long edge. 10 tests passing; core crates cross-compile for aarch64-linux-android. |