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| # react_preprocess — building the React release | |
| The producer side of the dataset. `toolbox/` (`react_toolbox`) reads the | |
| published data; this package is what turns raw rig recordings into it, and | |
| ships alongside the data so the release is reproducible. | |
| ```bash | |
| python -m react_preprocess build --task pushT [--with-depth] | |
| python -m react_preprocess audit --task pushT | |
| python -m react_preprocess backfill-flags --task pushT | |
| python -m react_preprocess verify-flags --task pushT --against h5 | |
| ``` | |
| ## Pipeline | |
| ``` | |
| recording.h5 | |
| │ h5io read timestamps/poses, resolve tactile↔camera alignment | |
| │ tactile pass 1: pick the p01 no-contact reference | |
| │ pass 2: contact metrics + new-frame flags + encode | |
| │ encode H.264 yuv444p CRF18 (RGB), FFV1 gray16le (depth) | |
| │ meta per-frame parquet | |
| ▼ | |
| release/<task>/{videos,depth,meta}/<date>/episode_NNN/… | |
| ``` | |
| | Module | Responsibility | | |
| |---|---| | |
| | `config` | paths, camera mapping, encoding and contact constants | | |
| | `h5io` | source reading, pose alignment, **tactile time alignment** | | |
| | `contact` | contact metrics, p01 reference, duplicate-frame detection | | |
| | `encode` | ffmpeg writers | | |
| | `tactile` | two-pass GelSight processing | | |
| | `meta` | parquet assembly and index columns | | |
| | `detect` | bad-interval detectors + clean-span complement | | |
| | `curation` | per-task `bad_frames.json` / `segments.json` / `episodes.jsonl` | | |
| | `previews` | preview policy (calibration choice, trim, world offset, layout) | | |
| | `pipeline` | per-episode orchestration | | |
| | `backfill` | recover flags for already-published parquet | | |
| | `publish` | mirror data + code to the Hub | | |
| `previews` holds policy only — the panel renderer needs rig-local calibration | |
| the release does not ship, so it stays in `twm/scripts/build_release_previews.py` | |
| as a thin adapter over `previews.plan()`. Port checks: `detect`/`curation` | |
| reproduce the published `bad_frames.json` and `segments.json` for all 36 | |
| episodes with zero differences; the preview adapter re-renders | |
| `pushT/episode_000` bit-identically (first-frame MAD 0.00, same 900 frames). | |
| ## Tactile time alignment | |
| How a GelSight frame is paired with a camera frame depends on the recording: | |
| | | legacy (≤ 2026-06-18) | timestamped (2026-06-27 →) | | |
| |---|---|---| | |
| | Pairing | by tick index | nearest capture timestamp | | |
| | Systematic lag | ~15 frames (0.5 s) | removed at the source | | |
| | Constant shift needed | yes | **no — would double-correct** | | |
| The rig used to decode full 8 MP MJPG frames on the capture thread (~71 ms | |
| each), so tactile really ran at ~8 fps while rows were written at 30 Hz. That | |
| produced both the lag and heavy frame duplication. The rig now decodes at | |
| reduced scale and records `gelsight/<side>/timestamps`. | |
| `h5io.TactileAlignment.needs_legacy_shift` is the guard: it is False for | |
| timestamped recordings, so a latency shift can never be applied twice. | |
| ## `tactile_*_is_new` | |
| The GelSight Mini tops out at 18.75 fps while parquet rows are written at | |
| 30 Hz, so some rows necessarily repeat the previous tactile frame. Legacy | |
| recordings repeat far more. These boolean columns mark the rows that are | |
| genuinely fresh readings: | |
| ```python | |
| df = pq.read_table("episode_000.parquet").to_pandas() | |
| fresh = df[df.tactile_left_is_new] # train tactile dynamics on these | |
| ``` | |
| Measured — legacy over the whole published release (480 080 rows, 36 episodes), | |
| fixed rig over `test/2026-06-29/episode_001` (1 294 rows, both sensors): | |
| | | capture rate | duplicate rows | effective rate | longest frozen run | | |
| |---|---|---|---|---| | |
| | legacy | ~8 fps (decode-bound) | 71.8 % | 8.5 fps | 30 frames (1.0 s) | | |
| | fixed rig | 19.3 fps | 39.5–41.5 % | 17.6–18.2 fps | 5 frames (0.17 s) | | |
| The residual ~40 % on the fixed rig is irreducible: a 19 fps sensor sampled onto | |
| a 30 Hz row clock must repeat roughly a third of its rows. Only the legacy | |
| excess above that was a bug. | |
| **How the flags are recovered for already-published data.** A repeated frame | |
| yields a bit-identical contact triple, so a row is fresh exactly when its | |
| triple differs from the previous row's — no video decode required. | |
| `verify-flags --against h5` checks this against source pixels: on all seven | |
| audited episodes (4 pushT + 3 motherboard) it reproduces the source | |
| frame-by-frame with **0 mismatches in 899 frames each**, and independently | |
| recovers the +15 shift baked into the release (every other offset in 0..20 | |
| disagrees on >33 % of frames, so the detection is unambiguous). | |
| Checking against the published MP4s can only ever be approximate — H.264 is | |
| lossy, so a duplicated frame does not decode back to identical pixels. | |
| `--against video` therefore compares with a tolerance and reports the observed | |
| separation rather than asserting exactness. | |
| ## Conventions | |
| - Frame `i` of every MP4 == parquet row `i` == source frame `trim_offset + i` | |
| - Cameras: `cam0 → view_right`, `cam1 → view_left`, `cam2 → view_middle` | |
| (verified against calibration serials) | |
| - Tactile frames are RGB in HDF5 and converted to BGR only for ffmpeg | |
| - Depth is uint16 millimetres, `0` = no return | |
| - The 2026-05-19 motherboard world-origin offset is baked into stored poses | |
| Paths come from `REACT_DATA_ROOT` / `REACT_STAGE_ROOT` when set, so the | |
| package runs off the rig. | |