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Error code: DatasetGenerationCastError
Exception: DatasetGenerationCastError
Message: An error occurred while generating the dataset
All the data files must have the same columns, but at some point there are 12 new columns ({'Unique positions', 'Altitude max (m)', 'Duration (s)', 'SRT source', 'End (local)', 'GeoTIFF', 'Start (local)', 'Telemetry samples', 'Horizontal distance (m)', 'Recording ID', 'Preview', 'Altitude min (m)'}) and 11 missing columns ({'height', 'map_video', 'area_width_m', 'source_duration_s', 'duration_difference_s', 'map_duration_s', 'area_height_m', 'rendered_frames', 'fps', 'video', 'width'}).
This happened while the csv dataset builder was generating data using
hf://datasets/zhiyundeng/AirLock-WACV2026/reference-map/overlay/uav-path/index.csv (at revision 10976b03097ec7195ad5492619cc94c8c4a941f8), ['hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/map-video/manifest.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/uav-path/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/vehicle-path/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/vehicle-trajectory/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/manifest.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T09-46-23.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T09-54-51.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-19-13.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-35-17.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-44-22.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-53-32.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-09-18T14-38-58.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-09-18T14-57-10.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/manifest.csv']
Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations)
Traceback: Traceback (most recent call last):
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1848, in _prepare_split_single
writer.write_table(table)
~~~~~~~~~~~~~~~~~~^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/arrow_writer.py", line 765, in write_table
self._write_table(pa_table, writer_batch_size=writer_batch_size)
~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/arrow_writer.py", line 773, in _write_table
pa_table = table_cast(pa_table, self._schema)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2378, in table_cast
return cast_table_to_schema(table, schema)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2306, in cast_table_to_schema
raise CastError(
...<3 lines>...
)
datasets.table.CastError: Couldn't cast
Recording ID: string
GeoTIFF: string
Preview: string
SRT source: string
Telemetry samples: int64
Unique positions: int64
Start (local): string
End (local): string
Duration (s): double
Horizontal distance (m): double
Altitude min (m): double
Altitude max (m): double
-- schema metadata --
pandas: '{"index_columns": [{"kind": "range", "name": null, "start": 0, "' + 1795
to
{'video': Value('string'), 'map_video': Value('string'), 'source_duration_s': Value('float64'), 'map_duration_s': Value('float64'), 'duration_difference_s': Value('float64'), 'fps': Value('float64'), 'width': Value('int64'), 'height': Value('int64'), 'area_width_m': Value('float64'), 'area_height_m': Value('float64'), 'rendered_frames': Value('int64')}
because column names don't match
During handling of the above exception, another exception occurred:
Traceback (most recent call last):
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1369, in compute_config_parquet_and_info_response
parquet_operations, partial, estimated_dataset_info = stream_convert_to_parquet(
~~~~~~~~~~~~~~~~~~~~~~~~~^
builder, max_dataset_size_bytes=max_dataset_size_bytes
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
)
^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 948, in stream_convert_to_parquet
builder._prepare_split(split_generator=splits_generators[split], file_format="parquet")
~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1694, in _prepare_split
for job_id, done, content in self._prepare_split_single(
~~~~~~~~~~~~~~~~~~~~~~~~~~^
gen_kwargs=gen_kwargs, job_id=job_id, **_prepare_split_args
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
):
^
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1850, in _prepare_split_single
raise DatasetGenerationCastError.from_cast_error(
...<4 lines>...
)
datasets.exceptions.DatasetGenerationCastError: An error occurred while generating the dataset
All the data files must have the same columns, but at some point there are 12 new columns ({'Unique positions', 'Altitude max (m)', 'Duration (s)', 'SRT source', 'End (local)', 'GeoTIFF', 'Start (local)', 'Telemetry samples', 'Horizontal distance (m)', 'Recording ID', 'Preview', 'Altitude min (m)'}) and 11 missing columns ({'height', 'map_video', 'area_width_m', 'source_duration_s', 'duration_difference_s', 'map_duration_s', 'area_height_m', 'rendered_frames', 'fps', 'video', 'width'}).
This happened while the csv dataset builder was generating data using
hf://datasets/zhiyundeng/AirLock-WACV2026/reference-map/overlay/uav-path/index.csv (at revision 10976b03097ec7195ad5492619cc94c8c4a941f8), ['hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/map-video/manifest.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/uav-path/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/vehicle-path/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/reference-map/overlay/vehicle-trajectory/index.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/synchronized/manifest.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/uav/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T09-46-23.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T09-54-51.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-19-13.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-35-17.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-44-22.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-08-23T10-53-32.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-09-18T14-38-58.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-raw/2025-09-18T14-57-10.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle-video-aligned/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1001.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1002.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1003.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1004.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1005.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1006.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/DJI_1007.csv', 'hf://datasets/zhiyundeng/AirLock-WACV2026@10976b03097ec7195ad5492619cc94c8c4a941f8/telemetry/vehicle/manifest.csv']
Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations)Need help to make the dataset viewer work? Make sure to review how to configure the dataset viewer, and open a discussion for direct support.
video string | map_video string | source_duration_s float64 | map_duration_s float64 | duration_difference_s float64 | fps float64 | width int64 | height int64 | area_width_m float64 | area_height_m float64 | rendered_frames int64 |
|---|---|---|---|---|---|---|---|---|---|---|
DJI_1001.MP4 | DJI_1001-position-map.mp4 | 685.31865 | 685.333333 | 0.014683 | 30 | 720 | 720 | 350 | 350 | 20,560 |
DJI_1002.MP4 | DJI_1002-position-map.mp4 | 389.923733 | 389.933333 | 0.0096 | 30 | 720 | 720 | 350 | 350 | 11,698 |
DJI_1003.MP4 | DJI_1003-position-map.mp4 | 677.894567 | 677.9 | 0.005433 | 30 | 720 | 720 | 350 | 350 | 20,337 |
DJI_1004.MP4 | DJI_1004-position-map.mp4 | 467.86795 | 467.866667 | -0.001283 | 30 | 720 | 720 | 350 | 350 | 14,036 |
DJI_1005.MP4 | DJI_1005-position-map.mp4 | 238.354783 | 238.366667 | 0.011884 | 30 | 720 | 720 | 350 | 350 | 7,151 |
DJI_1006.MP4 | DJI_1006-position-map.mp4 | 516.800167 | 516.8 | -0.000167 | 30 | 720 | 720 | 350 | 350 | 15,504 |
DJI_1007.MP4 | DJI_1007-position-map.mp4 | 190.807283 | 190.8 | -0.007283 | 30 | 720 | 720 | 350 | 350 | 5,724 |
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AirLock+ Dataset
Seven UAV flights over Austin, TX, each pairing nadir aerial video with geo-referenced satellite basemaps, per-frame drone telemetry, and — for five flights — first-person video and GPS from a car driving below.
Built for UAV-to-satellite image registration and air-to-ground target geolocalization: you get the aerial view, the map it should register against, and independently-measured ground truth for where the target vehicle actually was.
Accompanies the WACV 2026 paper AirLock+: Scaling UAV-to-Satellite Image Registration for Target Geolocalization and Geospatial Augmented Reality.
Project site · Paper (CVF) · IEEE Xplore
Poster
AirLock+ locates UAV-observed targets in world coordinates and overlays map-aligned graphics on live drone feeds. This dataset is the data release behind that system.
WACV 2026 poster — full-resolution PDF.
Preview
Each clip is a 30-second excerpt: the nadir UAV view fills the frame, with a
moving-map inset (bottom-left) tracking the UAV and vehicle against the satellite
basemap, and the vehicle's FPV camera (bottom-right) where it was recording.
DJI_1003 is aerial-only — no composite edit exists for that flight.
|
DJI_1001 — 11:25, 445 m AGL |
DJI_1002 — 6:29, 118–156 m AGL |
|
DJI_1003 — 11:17, 441 m AGL |
DJI_1004 — 7:47, 431–452 m AGL |
|
DJI_1005 — 3:58, 149 m AGL |
DJI_1006 — 8:36, 397 m AGL |
|
DJI_1007 — 3:10, 350–413 m AGL |
Full-length composites (0.4–1.3 GB each, 4.7 GB total) are in
If the players above don't render in your browser, the clips are in
|
At a glance
| Flight sequences | 7 |
| Total flight time | 52 min 46 s |
| Total ground track | 21.5 km |
| Altitude range (AGL) | 118 – 452 m |
| Max vehicle speed | 57 km/h |
| Aircraft / camera | DJI Air 2S (1″ CMOS, calibrated) |
| UAV video | 2688×1512 HEVC + 1920×1080 H.264, 59.94 fps |
| Telemetry rate | ~60 Hz, one sample per video frame |
| Capture dates | 2025-08-23 (1001–1005), 2025-09-18 (1006–1007) |
| Location | Austin, TX — 30.258–30.302 °N, 97.784–97.722 °W |
| Total size | 51 GB |
Sequences
| Seq | Duration | Alt. AGL | Track | UAV 2.7K | UAV 1080p | FPV video | Vehicle GPS | Scene |
|---|---|---|---|---|---|---|---|---|
DJI_1001 |
11:25 | 445–446 m | 4.48 km | ✅ 7.8 GB | ✅ | ✅ | ❌ | Highway interchange, rail corridor |
DJI_1002 |
6:29 | 118–156 m | 2.65 km | ✅ 4.5 GB | ✅ | ✅ | ✅ | Tree-lined residential, low altitude |
DJI_1003 |
11:17 | 441–446 m | 4.55 km | ✅ 7.7 GB | ✅ | ✅ | ✅ | Downtown core, high-rise |
DJI_1004 |
7:47 | 431–452 m | 4.66 km | ✅ 5.3 GB | ✅ | ✅ | ✅ | Waterfront, residential, parkland; fastest vehicle |
DJI_1005 |
3:58 | 149–150 m | 2.11 km | ✅ 2.7 GB | ✅ | ✅ | ✅ | Commercial strip and parking |
DJI_1006 |
8:36 | 397–398 m | 1.71 km | ✅ 5.9 GB | ✅ | ❌ | ⚠️ first 482 s | University campus |
DJI_1007 |
3:10 | 350–413 m | 1.37 km | ❌ 1080p-native | ✅ | ❌ | ✅ | Residential and parkland, altitude change |
Read the gaps before you plan an experiment:
DJI_1007was recorded in the aircraft's 1080p mode, so no 2.7K master exists for it.DJI_1001has vehicle video but no vehicle GPS — usable for registration, not for geolocalization error metrics.DJI_1006vehicle GPS stops at ~482 s of a 517 s flight; rows past that are markedunavailable.DJI_1006andDJI_1007have no FPV video.- 5 of 7 sequences (
1002–1005, partially1006) have both a ground-truth vehicle track and synchronized aerial video — these are the ones usable end-to-end.
Layout
previews/ 30 s clips + posters for each sequence
full/ full-length composite edits (6 seqs, 4.7 GB)
uav-video/
2.7k/ DJI_100N_2.7k.mp4 2688×1512 HEVC 59.94 fps (1001–1006)
1080p/ DJI_100N_1080p.mp4 1920×1080 H.264 59.94 fps (1001–1007)
calibration/ dji_air2s_2.7k.{yaml,npz,txt}, dji_air2s_1080p.yaml
vehicle-video/ DJI_100N_fpv.mp4 1920×1080 H.264, GoPro FPV (1001–1005)
telemetry/
uav/ DJI_100N.srt raw DJI subtitle stream (full camera EXIF)
DJI_100N.csv parsed time/lat/lon/altitude
vehicle/ DJI_100N.csv per-sequence vehicle GPS (Phyphox), + manifest.csv
vehicle-raw/ <ISO-timestamp>.csv unmodified Phyphox app exports
vehicle-video-aligned/DJI_100N.csv vehicle GPS re-zeroed to video start
synchronized/ DJI_100N.csv ★ UAV + vehicle merged on the video clock
manifest.csv, README.md
reference-map/
basemap/ mapbox-satellite_z17.tif, mapbox-satellite-streets_z17.tif,
mapbox-streets_z17.tif, openstreetmap_z17.tif, naip_z17.tif (+ .jpg)
overlay/
uav-path/ DJI_100N_uav-path.{png,tif}, uav-paths.geojson, index.csv
vehicle-path/ DJI_100N_vehicle-path.{png,tif}, vehicle-paths.geojson, index.csv
vehicle-trajectory/ DJI_100N_vehicle-trajectory.{png,tif}, …
map-video/ DJI_100N_map.mp4 720×720 moving-map render, 30 fps
The file most people want
telemetry/synchronized/DJI_100N.csv — one row per UAV video frame, with the vehicle's
position interpolated onto the same clock. This is the join between aerial pixels and
ground truth.
frame_index, video_time_s, timestamp, drone_lat, drone_lon, drone_altitude_m,
vehicle_lat, vehicle_lon, vehicle_altitude_m, vehicle_altitude_wgs84_m,
vehicle_speed, vehicle_data_status
vehicle_data_status is exact, interpolated, or unavailable — always filter on
it before computing metrics; vehicle values are never extrapolated beyond the measured
track.
import pandas as pd
df = pd.read_csv("telemetry/synchronized/DJI_1004.csv")
gt = df[df.vehicle_data_status != "unavailable"] # rows with real ground truth
row = gt.iloc[1000] # frame -> UAV pose + target position
Frame i of uav-video/*/DJI_1004_*.mp4 corresponds to frame_index == i; both video
tiers share the same frame count and timebase, so the CSV applies to either.
Other formats
| Path | Format | Notes |
|---|---|---|
telemetry/uav/*.srt |
DJI subtitle stream | Per-frame iso, shutter, fnum, ev, ct, focal_len, dzoom_ratio, latitude, longitude, altitude |
telemetry/uav/*.csv |
CSV | Parsed Time (s), Latitude (°), Longitude (°), Altitude (m) |
telemetry/vehicle/*.csv |
CSV | Phyphox GPS: timestamp, lat/lon, altitude (MSL + WGS84), speed, heading, accuracy, satellites |
reference-map/basemap/*.tif |
GeoTIFF | WGS84, zoom 17, covering all flight areas |
reference-map/overlay/**/*.geojson |
GeoJSON | Flight paths with per-feature distance, duration, sample counts |
reference-map/overlay/**/index.csv |
CSV | Per-sequence summary: distance, altitude min/max, start/end local time |
Camera calibration
Intrinsics were estimated at the camera-native 2688×1512 and are provided as OpenCV
FileStorage YAML, NumPy .npz, and plain text in uav-video/calibration/.
| 2.7K master | 1080p proxy | |
|---|---|---|
| Image size | 2688 × 1512 | 1920 × 1080 |
| fx, fy | 2470.18, 2485.77 | 1764.41, 1775.55 |
| cx, cy | 1316.53, 806.53 | 940.38, 576.09 |
Distortion (plumb_bob) |
k1 0.088717, k2 −1.543803, p1 0.004218, p2 −0.005799, k3 5.873702 | same |
| FOV (H × V) | 57.1° × 33.8° | 57.1° × 33.8° |
The 1080p matrix is the 2.7K matrix scaled by 1920/2688; distortion coefficients are dimensionless and shared. Use the calibration matching the tier you downloaded.
import cv2
fs = cv2.FileStorage("uav-video/calibration/dji_air2s_2.7k.yaml", cv2.FILE_STORAGE_READ)
K = fs.getNode("camera_matrix").mat()
dist = fs.getNode("distortion_coefficients").mat()
How the synchronization works
Drone telemetry arrives embedded in the video as an SRT stream, so it is inherently
frame-aligned — no cross-device sync needed for the UAV side. The vehicle carried a
phone running Phyphox logging GPS independently; its track is
linearly interpolated onto the UAV video's elapsed-time axis to produce
telemetry/synchronized/. manifest.csv records, per sequence, the video duration and
frame count, drone sample coverage, and how many vehicle samples were exact, interpolated,
or unavailable.
For DJI_1006 the vehicle track is deliberately shifted by 34.999362 s so its first sample
lands at video time zero; this is why its coverage ends early.
Download
# everything (51 GB)
hf download zhiyundeng/AirLock-WACV2026 --repo-type dataset --local-dir AirLock
# just what you need
hf download zhiyundeng/AirLock-WACV2026 --repo-type dataset --local-dir AirLock \
--include "telemetry/**" "uav-video/1080p/*" "uav-video/calibration/*"
from huggingface_hub import snapshot_download
snapshot_download(
"zhiyundeng/AirLock-WACV2026", repo_type="dataset",
allow_patterns=["telemetry/synchronized/*", "uav-video/1080p/*",
"uav-video/calibration/*", "reference-map/basemap/*"],
)
Sizes on disk: 2.7K video 34.0 GB · full previews 4.7 GB · FPV video 4.7 GB · basemaps 3.6 GB · 1080p video 3.5 GB · map videos 340 MB · map overlays 280 MB · telemetry 100 MB · preview clips 50 MB.
Start with uav-video/1080p/ + telemetry/ + reference-map/basemap/ (7.2 GB) — that's
enough to reproduce registration and geolocalization experiments. Add the 2.7K masters only
if you need native resolution.
Citation
@inproceedings{deng2026airlock+,
title={AirLock+: Scaling UAV-to-Satellite Image Registration for Target Geolocalization and Geospatial Augmented Reality},
author={Deng, Zhiyun and Case, Austin and Sentis, Luis},
booktitle={Proceedings of the IEEE/CVF Winter Conference on Applications of Computer Vision},
pages={3340--3349},
year={2026}
}
License
CC BY 4.0 — © 2026 Zhiyun Deng, Austin Case, and Luis Sentis. Share and adapt with attribution.
Applies only to material the copyright holders can license; it grants no rights over
privacy, publicity, trademarks, or patents. Basemap imagery in reference-map/basemap/ is
redistributed under its providers' terms (Mapbox, OpenStreetMap contributors, USDA NAIP).
Footage was captured over public areas; incidental vehicles, buildings, and people appear. Please use it responsibly and do not attempt to identify individuals.
Contact
Zhiyun Deng — zdeng@utexas.edu
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