The traceability tool scans `tools/`, which is its own source, and a line was taken for a tag whenever `TRACES:` appeared anywhere on it. Its unit-test fixtures are therefore tags. R1 — cross-platform output within a bounded tolerance, the requirement with no acceptance criterion at all — was reported implemented on the strength of two string literals in `context_looks_forward_then_backward`. R1 was only the visible case because it had no other coverage. The same fixtures also contributed sites to FR-CAT-1, FR-CAT-2 and NFR-P1, `gestures.rs` contributed one to FR-UI-4 from a `push_str`, and `dr-pipeline/build.rs` contributed FR-DEV-3a and FR-DEV-3c from the tag it *emits* into generated code. Those four requirements keep real tags elsewhere, so nothing but noise is lost by dropping them. The rule is about position, not about string literals. It cannot be about string literals: `schema.rs` writes six genuine tags inside Rust string literals, because the SQL it embeds is commented with `--`, and an extractor that refused those would lose more than it saved. What separates the two is where on the line the tag is. A tag written to be read is the first word of its comment; a tag quoted inside an expression never is. So `tag_body` asks for a comment opener at the start of the line and `TRACES:` immediately after it. That closes every shape but one: a multi-line literal whose lines really do begin with `///`, which no line-oriented reader can tell from source. There is one such fixture and its ids are now UT and IT, which `is_requirement` already excludes from coverage — the mechanism existed and was simply never used on the tool itself. `this_crates_own_fixtures_cannot_reach_the_register` enforces that: any requirement id below `mod tests` in this crate fails the test and says to use a UT- or IT- id instead. Tagging the tool's real code is still allowed. On `SOURCE_SUFFIXES`, which cannot reach `AndroidManifest.xml`, the Flatpak manifest, the Dockerfile or the CI workflows: it is deliberately left alone, and the reasoning is recorded beside it. A tag on a manifest asserts that a comment exists next to a line nothing checks, which is the weak form CONTRIBUTING.md warns about. The convention already in the tree — a Rust test that `include_str!`s the file and asserts what must be in it, with the tag on the test — is what a tag is supposed to mean. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
25 KiB
DarkRoom — Outstanding work
Status: Living document · first written 2026-08-29 Companion to: requirements.md §7, technical-debt.md, traceability.md
What is specified and not built, and for each cluster whether that is a decision, a dependency, or a gap nobody has looked at.
This document exists because traceability.md cannot tell those apart. It reports
one number — the share of requirements carrying a TRACES tag — and a missing tag means either
"nobody has built this" or "somebody built it and did not say so". Both read the same way in the
summary table, which makes that figure pessimistic and uninformative at once: it understates what
works while hiding which of the remainder matters. Eight requirements gained a tag on this branch
because the code already satisfied them and nobody had said so. Everything below is the other kind.
It is also not a plan. requirements.md §7 records what was deferred deliberately and needs no argument; this records what is still nominally in scope, so that the distance between the register and the binary is visible rather than something a reader has to reconstruct from a percentage. Where the honest answer is "this requirement should be amended rather than met", it says so — an unbuilt requirement that nobody intends to build is worse than a deferred one, because it keeps costing attention.
Several entries were struck between 2026-08-29 and 2026-08-30, as two waves of work landed: burst grouping (FR-CULL-5), Flatpak packaging (FR-PLAT-LIN-3), FR-CULL-3 in full, Android memory pressure and lost-root recovery (FR-PLAT-AND-5, FR-PLAT-AND-2), image intents (FR-PLAT-AND-6), and the job runner (FR-PLAT-AND-4's Rust half). What remains of each is recorded where it appears rather than deleted, because a requirement that is half met is the one most likely to be reported as closed.
1. Plugins — 21 requirements, and a contradiction to resolve before any of them
Untagged: FR-PLG-1, -1a, -2a, -2b, -2c, -3, -3a, -4, -4a, -5, -5a, -5b, -5c, -6, -6a, -7, -8, -9, -10, -11, -12.
No plugin host exists. No crate loads anything at runtime: there is no manifest reader, no WASM or
Lua engine, no registry, no signature check, no install path, no capability grant, no per-plugin
failure ledger. declared/mod.rs says as much in its own documentation — the operation format is
"not a plugin directory read at startup".
Two of §3.10's requirements are met, and they are the interesting two. FR-PLG-2 and FR-PLG-2d —
the declarative node format — are built and tagged: core/dr-pipeline/ops/*.yaml compiled by
build.rs, with the restricted expression grammar in declared/expr.rs and a parity test asserting
a declared operation and a hand-written one produce identical output.
code-health.md §3 calls it "a working plugin system that happens to resolve at
build time", and that is exactly right. What is missing is not the format; it is everything that
would let somebody who is not in this repository use it.
The contradiction. requirements.md §7 lists | Plugin API | — | among the
things deferred for v1 — a bare row, where most deferrals carry a justifying note. §3.10 then spends
roughly 280 lines and 23 requirement IDs specifying that same Plugin API in detail. Both statements
are in the register of record, and the traceability denominator counts the second one: 21 IDs, 12%
of all 179 defined requirements, worth about twelve points of coverage on their own — and nearly a
third of everything the matrix reports as uncovered. A reader looking at the coverage figure has no
way to know that, or that the subsystem behind it is one the same document says is not in this
version.
And D16 is open. Decision D16 — plugin licensing — records that GPLv3 answers the derivative-work question differently for each of §3.10's three plugin forms, and that this "must be answered before an ecosystem exists, not after", because a term introduced later cannot be applied to plugins already written. D16 explicitly does not block FR-PLG-2; it blocks publishing a third-party format as stable.
What would resolve this: an edit to requirements.md, not code. Either §7 drops the row, or
§3.10 is marked deferred with the two built requirements carved out. Until one of those happens the
coverage figure is measuring a decision that has already been taken, and taking it again every time
somebody reads the matrix.
2. Culling — the stated differentiator, half built
D11 names culling "the core differentiator". FR-CULL-1, -2, -3, -4 and -8 through -12 are built. Three are not.
FR-CULL-3 — Raw-truth overlays. Built, all three bullets. Focus peaking is
core/dr-gpu/src/focus.rs and ui/dr-ui/src/peaking.rs; the raw histogram and the raw clipping
indicators are core/dr-gpu/src/raw_histogram.rs and the second reading of the panel in
histogram.slint.
Worth recording, because it is the thing this entry previously got wrong and the next reader will
have to check again. The display histogram — dr-gpu/src/histogram.rs, ui/dr-ui/src/histogram.rs
— is not this requirement and never was: it is tagged FR-DSP-7, it reads AdjustPass's 8-bit
output, it counts clipping as r == 255, and so it describes the frame the display is about to
show, after the whole develop chain. FR-CULL-3 asks for the sensor data, on the explicit grounds
that a rendered image "systematically lies about what is recoverable in the raw". The two now sit in
one panel behind a chip row, which is the arrangement that keeps them from being mistaken for each
other: they answer different questions and both are true.
What the raw reduction cannot answer is written down rather than left to be discovered — architecture.md §5.5 records why it reduces over the demosaiced texture instead of the CFA samples §5.5 originally specified, and what that costs in what it can say.
FR-CULL-5 — Burst and near-duplicate grouping. Built. core/dr-catalog/src/bursts.rs:
frames join a burst when they are adjacent in time and look like the frame before them, compared
adjacent-pair-only in one ordered walk. Signatures are 64-bit difference hashes taken from the
thumbnails dr-thumbs already holds, on a background pass after the thumbnail sweep — nothing at
import, nothing at query time. Nothing scores or rejects a frame: the representative is the
earliest, a fact about the clock, and a new burst arrives open so the pass never takes a row off
the screen.
Two threads left hanging. core/dr-face/src/calibrate.rs still says "since FR-CULL-5 already
groups bursts, positives are bootstrapped from bursts" while in fact bootstrapping from confirmed
labels — that comment was a forward reference and is now simply wrong, rather than premature.
And dr_catalog::bursts::choose_representative is written and tested but bound to no gesture, so
today the only override is expanding the burst.
core/dr-catalog/src/dedup.rs remains a different thing: re-import detection under FR-CAT-11,
matching a file against one already catalogued, not two photographs against each other.
FR-CULL-6 — Compare and survey. Absent. No side-by-side view, no synchronised zoom or pan. This is the one of the four with no adjacent machinery at all, and it is also the one that most directly distinguishes culling from browsing.
FR-CULL-7 — Culling on tablet. Absent, and blocked by the three above rather than independent of them: there is no separate tablet culling surface to build until there is something to put on it.
3. FR-DEV-3g — AI denoise
Promoted into v1 by D11, and named there as the precondition for deferring AI
masking — the argument being that one learned stage earns the runtime that a second could then
reuse. Only classical noise reduction exists: ops/noise_reduction.rs, a bilateral filter in two
arrangements, exact for luminance and separable for chroma. It is good, and it is not this.
models/ holds two face models and nothing else; core/dr-segment/models/ holds a YOLO
segmentation model for subject masks. There is no denoise model, no learned demosaic, and no
inference path that is not face or segmentation.
The obstacle is not the pipeline. It is that D13 — model licensing — is still open for the models that already ship, and adding a third learned stage adds a third licence to answer for. Building the runtime before that is settled means owning the same problem in one more place.
4. The render path — FR-DSP-2, FR-DSP-4, NFR-RES-2
FR-DSP-2 — Tiled computation. Unbuilt, and under challenge. architecture.md §6.2
calls for tiling "from day one" on the grounds that retrofitting it is a rewrite. It was not built,
and the evidence has since moved. core/dr-gpu/tests/frame_budget.rs carries the argument in its
own header: one fused dispatch over a viewport-sized target is comfortably inside the frame budget,
and "if that stops being true, the recommendation to strike tiled computation from the interactive
path stops being supported, and this test is what says so."
technical-debt.md TD-4 reaches the same place from the other direction — a
tiled convolution at clarity's radius reads nearly twice the taps that an untiled one does, so the
stage that looks most like it wants a tile cache is the stage that would be hurt most by one.
What exists is the declaration and not the mechanism: DetailPass::radius is documented as the halo
a tile would have to be grown by, with a test that pins it, and there is no scheduler to read it.
That is deliberate plumbing, not an oversight.
So the open question here is not "when is tiling built" but "is FR-DSP-2 still a requirement". Two measurements say it costs more than it saves on the interactive path. Neither says anything about the export path or about a device under memory pressure, which is where the case for it actually lives — and that is spike S6, which has not run.
FR-DSP-4 — Progressive refinement. Unbuilt. FR-DSP-1's proxy rendering and TD-4's quarter-resolution base are adjacent and are not it: both are fixed choices about what resolution to compute at, where FR-DSP-4 asks for a first frame that is deliberately cheap and a second that replaces it. Nothing tracks a "this frame is provisional" state.
NFR-RES-2 — Images larger than GPU memory. No answer, and §4.3 knows it: the requirement text itself asks the reader to "decide explicitly" how ARCH §6.4 and NFR-RES-2 are reconciled. There is no headroom budget, no allocation-failure fallback, and no spill. Spike S6 — a tiled pipeline on a mid-range Android device with an image larger than available GPU memory — is the one that would settle both this and FR-DSP-2, and there is no evidence it has run.
5. Android beyond running, and Flatpak
The Android app is not a stub — it builds an APK, runs the whole application, unpacks bundled face models, and has been measured on a tablet (faces.md §12.1, technical-debt.md TD-1). What is missing is the platform contract around it.
FR-PLAT-AND-1 is tagged and should not be relied on. The requirement demands that library access
be obtained exclusively through the Storage Access Framework. There is no SAF code: no
ACTION_OPEN_DOCUMENT_TREE, no takePersistableUriPermission, no DocumentsContract. The two tags
rest on a SourceRef::Document variant that nothing constructs and a volumes helper, which is the
"plumbing a future feature would use" case CONTRIBUTING.md and
code-health.md CH-4 both warn about. Android reaches a library through a Nextcloud
account or a folder, over paths, like the desktop.
That has a consequence for the rest of the cluster: FR-PLAT-AND-2 — detecting the loss of a granted tree permission and marking images offline rather than deleting rows — cannot be built until there is a permission to lose. It is listed here as unbuilt, but it is blocked, not skipped.
FR-PLAT-AND-4 — half built. The runner is done (core/dr-catalog/src/runner.rs): the
queue that jobs.rs always had is now claimed from, completed, failed and recovered after a
crash, which is FR-PLAT-AND-3's resumability as much as this requirement's. What is missing is
the platform half — a foreground Service, FOREGROUND_SERVICE and POST_NOTIFICATIONS in the
manifest, and a stated Doze behaviour. The build step that blocked it is no longer a blocker: the
APK now compiles its own Java.
Note also that no handler is registered, deliberately. The only enqueue site reachable in the
shipping app produces remote thumbnail jobs already served by the async grid worker, and
walk::scan_root — which holds the other two enqueue sites — has no caller outside an example.
Wiring the sweep to claim from the queue is the honest next step and is an async rewrite of
library.rs.
FR-PLAT-AND-5 — built. A tiered eviction registry drives GPU caches, then proxies, then
thumbnails, from MainEvent::LowMemory and MainEvent::Stop.
FR-PLAT-AND-6 — built, with one half unwired. VIEW, SEND and SEND_MULTIPLE filters, the launch
Intent read over JNI, and an ExportProvider rooted at getFilesDir() rather than AndroidX's
FileProvider. The outbound share has no caller in ui/ yet. None of the runtime behaviour has
been exercised on a device — the tests read the manifest and the Java through include_str!,
which catches a deleted filter but not a class loader that cannot find the class.
FR-PLAT-LIN-3 — packaged, not satisfied. There is a Flatpak manifest now, granting no
filesystem permission of any kind, plus AppStream metainfo and docs/distribution.md. The
requirement is still not met, and cannot be met by packaging: a folder library is chosen by typing
an absolute path, nothing in the tree calls the FileChooser portal, and inside the sandbox $HOME
holds only .var/app/.... dr_plat::volumes() reads /proc/self/mountinfo, so a card mounted on
the host is invisible to a sandboxed process as well. The fix is an ashpd directory picker beside
LocalStorage::grant, not a change to the manifest. No Flatpak has been built here —
flatpak-builder is not installed — so the permission set is reasoned, not observed.
NFR-COMPAT-2 — distribution channels. Unstated, and this is the requirement that makes the
others binding: §4.8 observes that the decision to publish on Play is what turns SAF from a
preference into a constraint. Spike S11, the Play permissions dry-run that would settle it, has not
run. Related, NFR-COMPAT-1's baseline is real but scattered — API 28/36 live in the Android
Dockerfile and are checked in CI against the built ELF, which is good — while the items the
requirement singles out are missing: whether shaderFloat16 and 16-bit storage are required (the
one it flags as jeopardising R1), minimum RAM, minimum desktop Mesa, and a named reference device
from a second GPU vendor.
NFR-OPS-2 and NFR-OPS-4. Crash reporting is a log::error! panic hook on Android and nothing at
all on desktop: no local crash record, no backtrace capture, no upload path and therefore no opt-in
gate to guard it. Update and first run are undefined; the concrete reason NFR-OPS-4 gives — that D2
pins rawler at a non-SemVer alpha whose camera-support fixes users will need — is unaddressed, and
there is no update mechanism of any kind.
6. Accessibility and internationalisation — the hard half is done and the easy half is not
NFR-A11Y-1 — Localisation. @tr( appears zero times across 14,482 lines of Slint. That
number overstates the problem, because the part that is genuinely architectural was got right:
LocalizedKey keeps display strings out of core/ entirely, every operation publishes a key rather
than a label, and labels::resolve is the single point where a key becomes text. What that single
point does, however, is a hardcoded English match in Rust source — so changing a translation
requires a recompile, which is the one thing the requirement explicitly forbids. There is no message
catalogue in any format, no locale-resolution rule, and no decision recorded about RTL.
The work left is therefore smaller than it looks and entirely mechanical: a catalogue format, a load
path behind resolve, and @tr( around the Slint literals. The design it needs already exists.
NFR-A11Y-2 — Accessibility. accessible-* appears five times in the whole interface, all five
on one control — the parameter slider in adjust.slint — and nothing is set from the Rust side at
all. Everything else in eighteen Slint files is unnamed to AT-SPI and TalkBack. The requirement's own
caveat, that Slint's Android accessibility needs verifying, is spike S13, which has not run.
NFR-A11Y-3 — Colour-independent status. No compliance work found. This is cheap to satisfy while a control is being written and expensive to retrofit across forty of them, which is an argument for doing it as part of the NFR-A11Y-2 pass rather than after it.
7. Catalog and sync
FR-CAT-14 — Migration import. Reading ratings, labels, keywords and collections out of a
Lightroom .lrcat or a darktable library.db. Unbuilt. The destination is not: keywords,
collections, ratings and the cross-device merge rules are all built and tested, and
keywords.rs already anticipates the arrival ("an import from Lightroom can bring in…"). What is
missing is only the two source adapters — which is a comparatively contained piece of work for a
requirement that decides whether somebody can try this software on a library they already have.
FR-NC-11 — Initial catalog build. Using WebDAV SEARCH (RFC 5323) against /remote.php/dav/,
filtered by mimetype and paginated, in preference to walking folders with PROPFIND. Unbuilt: no
SEARCH request is issued anywhere. The PROPFIND walk this exists to replace is fully built and
well optimised — ETag pruning under FR-NC-4 turns an unchanged 50k library into one request — so the
gap is narrower than it reads. It is the first build against a large remote library that pays, and
that is the moment a new user meets.
FR-CAT-13 — XMP interoperability, tagged and not met. Read and write standard XMP sidecars. The
single tag sits on keywords.rs, which stores keywords; no XMP is parsed or written anywhere in the
tree, and dr-export's metadata module says so about its own half ("neither is read by dr-decode
today"). Listed here rather than silently, because a tag makes a gap invisible and this one is
load-bearing for interoperating with the editors FR-CAT-14 imports from.
8. The performance targets are unverified, not unmet
Eleven of the fifteen §4.1 targets carry no tag: NFR-P2, -P3, -P4, -P6, -P7, -P8, -P10, -P11, -P12, -P14, -P15. That is the uninteresting part of this section.
The interesting part is that §8 and §4.1 both require the same thing, in the same words, and it does
not exist: an automated benchmark suite against a synthetic 50k catalog, run per commit, where "a
regression beyond a stated tolerance is a build failure, not a notification." There is no
benches/ directory in the workspace, no criterion dependency, and no synthetic catalog. The three
CI workflows run cargo fmt --check, clippy, cargo test --workspace, a release build, an Android
cross-build and a layering check. None of them measures anything, so there is no baseline to
regress against and no tolerance to exceed.
What does exist is narrower and genuinely good: dr-gpu/examples/frame_budget is a real instrument,
its results are committed in frame-budget.md with the machine and profile named,
and TD-4's before-and-after was measured with it. But it is run by hand — frame-budget.md's own
instruction is "rerun and diff this file" — and the guard version that does live in CI skips itself
where there is no GPU adapter, which the workflow notes is the normal case on a runner, while
asserting its CPU half only when debug_assertions is off, which a dev-profile cargo test is not.
In CI it therefore asserts approximately nothing.
The claim to take from this is precise. Nothing here says the performance targets are missed. Several are plausibly met. It says that if one were broken tomorrow, nobody would find out — which is the failure mode §8 was written to prevent, and the reason it belongs in this document rather than in a backlog.
9. Two core requirements that cannot be closed as written
R1 — Cross-platform output within a bounded tolerance. §2 states that the threshold "must be fixed before spike S9", because S9 both validates R1 and calibrates what tolerance is achievable. The threshold was never fixed and S9 has not run, so R1 currently has no acceptance criterion at all — there is nothing a test could assert.
The matrix used to report R1 as covered, and what covered it was two string literals: fixtures
inside the traceability tool's own unit tests, which the tool scans along with everything else,
because a fixture demonstrating tag extraction was indistinguishable from a tag. The extractor now
asks where the tag sits — a tag is the first word of a comment, not a string appearing anywhere on a
line — and R1 is untagged again, which is the honest reading while it has no acceptance criterion to
tag anything against.
NFR-OPS-1 is covered the same way, from a tag on compute_coverage — and no rotating, size-capped
on-disk log exists; logging goes to stderr and logcat. These are two of the cases
CONTRIBUTING.md already warns about, now named.
R2 — Efficient display of huge RAW libraries. Its acceptance criterion contains "(figure TBD)" — the scroll velocity below which no cell may render as a placeholder — and asks for a stated prefetch margin and cache-hit rate. No figure is stated anywhere in the tree, neither quantity is measured, and TD-2 and TD-3 both describe the thumbnail path falling short of it in ways that were measured. R2 was deliberately left untagged on this branch for that reason: the machinery is substantial and the criterion is unmet and partly undefined.
Both belong with §8 above. A requirement whose threshold was never chosen and a target nothing measures fail in the same way — not by being wrong, but by being unfalsifiable.
10. Spikes
§9 defines fourteen validation spikes and says of three of them: "S1, S2 and S10 are the three that can invalidate the architecture."
Only S1 (Slint + wgpu zero-copy on Linux) and S14 (the face pipeline on a real library) have recorded results. S14's are the best evidence of any spike — a dedicated document, a measured pass over an 18,143-face library, a named device and a reproducible command — though D13's licensing half remains open.
S6, S9, S10, S11 and S13 show no evidence of having run at all. Each is referenced only from the requirement text that asks for it:
| Spike | Would settle | Blocked on |
|---|---|---|
| S6 | FR-DSP-2, NFR-RES-2 — tiling and images larger than GPU memory | Nothing; needs a device and a large image |
| S9 | R1's tolerance threshold, and therefore R1 | Nothing; the threshold is defined by running it |
| S10 | Whether SAF at 10k files meets NFR-P1/P3 | §5 — there is no SAF code to measure |
| S11 | NFR-COMPAT-2, and whether Play makes SAF binding | Nothing |
| S13 | NFR-A11Y-2 on Android | §6 — there is almost nothing to test with |
S2, S3, S4, S5, S7, S8 and S12 are also unrun, several with acknowledgements in the code that say
so (dr-sync/src/upload.rs on S8, dr-sync-nextcloud/src/lib.rs on S3). S2 is one of the three
architecture-invalidating spikes and needs Adreno and Mali hardware, which the manifest notes no
emulator represents.
The pattern is worth stating rather than leaving to be inferred: the spikes that ran are the ones whose subject was being built anyway. The ones that did not are the ones that would have said whether something should be built — which is the opposite of the order §9 asks for.
11. D12, which governs all of the above
Decision D12 — scope versus pace is still OPEN, and says:
The calibration selected an ambitious feature set — full tablet editing, full ingest, culling as a differentiator, complete GPU masking, AI denoise, Fuji-first colour, deep sync, sidecar durability — against a stated pace of evenings and weekends, indefinitely.
Those are not compatible as stated.
Sections 1 through 10 are what that incompatibility looks like eleven versions later, and they land almost exactly where D12 predicted: tablet editing carries SAF at unproven scale, background execution limits and two GPU vendors to validate (§5), and every one of those is unbuilt or unrun. The parts that were built — the develop pipeline, sync, faces, the catalog — are the parts that did not need a decision first.
D12 is not resolved by choosing to work faster. It is resolved by moving requirements across the line into §7, which costs nothing but the admission, and which this document is intended to make easy: every cluster above is a candidate, and each says what it would take to build and what it would cost to drop. Resolving D12 sets D3 and architecture.md §10's Phase 2.