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# EventActivityNet Dataset Generation

## Source Video Lineage

Both representations were generated from the non-interpolated/original-rate
ActivityNet video lineage. Source frame rate varies by video, no source video is
resampled or interpolated, and source spatial resolution is preserved.

## Large Subset Curation

The canonical Large set contains 3,263 unique videos. The recovered curation
implementation:

- merged ActivityNet Captions train and validation metadata before sampling;
- used seed `2025`;
- used initial class-balanced sampling with `max(5, int(class_ratio * class_count))` and `class_ratio=0.2`;
- used 33% and 66% duration quantiles;
- enriched event-friendly examples using caption keywords or first-frame darkness.

The keyword list is `run`, `fast`, `sprint`, `night`, `dark`, and
`slow-motion`; the darkness rule is normalized first-frame mean brightness
below `0.4`.

## HDF5 Generation

The recovered implementation follows:

1. `activitynet.py` video loading;
2. `mp4_to_h5.mp4_to_h5_stream()`;
3. `EventEmulatorGPU.video_to_voxel()`;
4. temporal grouping;
5. HDF5 writing.

| Parameter | 5-bin | 9-bin |
|---|---:|---:|
| `num_bins` | 5 | 9 |
| `frames_per_bin` | 1 | 1 |
| Source resizing | none | none |
| `events` dtype | `int16` | `int16` |
| Start/count dtypes | `int64` / `int32` | `int64` / `int32` |
| Event compression | gzip+shuffle | gzip+shuffle |
| Auxiliary compression | LZF+shuffle | LZF+shuffle |
| Learned checkpoint | none | none |

The canonical 9-bin lineage was generated with a frozen deterministic
configuration using RNG seed `42`. The emulator creates and seeds its generator
for each streaming batch while carrying the previous frame and returned
potential across batches. This is recorded as technical reproducibility
metadata; it is not a comparative quality claim.

## Generic Grouping Semantics

For bin count `B` and `N` decoded source frames:

```text
T_B = ceil((N - 1) / B)
```

Each generated event slice represents one adjacent-frame transition.
`events[t]` groups up to `B` consecutive slices;
`voxel_event_start[t] = B*t`; and `voxel_event_count[t]` records the valid
slice count. The final group is zero-filled beyond its valid count.

## Timing Basis

Seconds-level conversion uses each video's released rational nominal or average
frame rate. Construction follows decoded frame order and does not consume
per-frame presentation timestamps, so mapping is approximate for
within-video variable-frame-rate streams. No fixed 25-fps or 240-fps assumption
should be used.

## Release Scales

Large is the recovered historical set. Medium and Small are deterministic
nested v1.0 scales selected with seed `2025` and strata
`(split, class_label, duration_bucket, event_friendly)`. Small is a strict
subset of Medium, and Medium is a strict subset of Large. Both event voxel
representations share these scale manifests.

## Validation

Final validation confirmed exactly 3,263 readable files per representation,
the same 2,316/947 split assignment, expected tensor length and metadata arrays,
and zero remaining structural failures. Canonical HDF5 payload sizes are
4,355,745,895,245 bytes for 5-bin and 4,214,122,096,103 bytes for 9-bin.