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The dataset generation failed because of a cast error
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 7 new columns ({'x', 'type', 'dx', 'y', 'button', 'dy', 'session_offset_us'}) and 4 missing columns ({'frame', 'frame_pts_ms', 'mouse', 'capture_ns'}).

This happened while the json dataset builder was generating data using

hf://datasets/HuberyLL/nms_hitl_world_model/events.jsonl (at revision 5261d4cb138627b5bcd84ff68d06faddb08d43c8), [/tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions_resampled.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions_resampled.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/events.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/events.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/metadata.json (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/metadata.json)]

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/python3.12/site-packages/datasets/builder.py", line 1887, in _prepare_split_single
                  writer.write_table(table)
                File "/usr/local/lib/python3.12/site-packages/datasets/arrow_writer.py", line 675, in write_table
                  pa_table = table_cast(pa_table, self._schema)
                             ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.12/site-packages/datasets/table.py", line 2272, in table_cast
                  return cast_table_to_schema(table, schema)
                         ^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.12/site-packages/datasets/table.py", line 2218, in cast_table_to_schema
                  raise CastError(
              datasets.table.CastError: Couldn't cast
              type: string
              timestamp_ms: int64
              session_offset_us: int64
              dx: int64
              dy: int64
              x: int64
              y: int64
              key: string
              button: string
              to
              {'frame': Value('int64'), 'timestamp_ms': Value('int64'), 'frame_pts_ms': Value('float64'), 'capture_ns': Value('int64'), 'key': List(Value('string')), 'mouse': {'dx': Value('int64'), 'dy': Value('int64'), 'x': Value('int64'), 'y': Value('int64'), 'scroll_dy': Value('int64'), 'button': List(Value('string'))}}
              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 1347, in compute_config_parquet_and_info_response
                  parquet_operations = convert_to_parquet(builder)
                                       ^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 980, in convert_to_parquet
                  builder.download_and_prepare(
                File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 884, in download_and_prepare
                  self._download_and_prepare(
                File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 947, in _download_and_prepare
                  self._prepare_split(split_generator, **prepare_split_kwargs)
                File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1736, in _prepare_split
                  for job_id, done, content in self._prepare_split_single(
                                               ^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1889, in _prepare_split_single
                  raise DatasetGenerationCastError.from_cast_error(
              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 7 new columns ({'x', 'type', 'dx', 'y', 'button', 'dy', 'session_offset_us'}) and 4 missing columns ({'frame', 'frame_pts_ms', 'mouse', 'capture_ns'}).
              
              This happened while the json dataset builder was generating data using
              
              hf://datasets/HuberyLL/nms_hitl_world_model/events.jsonl (at revision 5261d4cb138627b5bcd84ff68d06faddb08d43c8), [/tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions_resampled.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/actions_resampled.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/events.jsonl (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/events.jsonl), /tmp/hf-datasets-cache/medium/datasets/40210979799444-config-parquet-and-info-HuberyLL-nms_hitl_world_m-b5f0b491/hub/datasets--HuberyLL--nms_hitl_world_model/snapshots/5261d4cb138627b5bcd84ff68d06faddb08d43c8/metadata.json (origin=hf://datasets/HuberyLL/nms_hitl_world_model@5261d4cb138627b5bcd84ff68d06faddb08d43c8/metadata.json)]
              
              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.

frame
int64
timestamp_ms
int64
frame_pts_ms
float64
capture_ns
int64
key
list
mouse
dict
0
1,770,540,126,083
0
3,790,800,692,491
[]
{ "dx": 0, "dy": 0, "x": 0, "y": 0, "scroll_dy": 0, "button": [] }
1
1,770,540,126,103
41.7
3,790,842,400,824
[]
{ "dx": 0, "dy": 0, "x": 0, "y": 0, "scroll_dy": 0, "button": [] }
2
1,770,540,126,145
83.4
3,790,884,109,157
[]
{ "dx": 0, "dy": 0, "x": 0, "y": 0, "scroll_dy": 0, "button": [] }
3
1,770,540,126,189
125.1
3,790,925,817,490
[]
{ "dx": 1, "dy": -3, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
4
1,770,540,126,231
166.8
3,790,967,525,823
[]
{ "dx": 0, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
5
1,770,540,126,272
208.5
3,791,009,234,156
[]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
6
1,770,540,126,313
250.2
3,791,050,942,489
[]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
7
1,770,540,126,355
292
3,791,092,650,822
[]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
8
1,770,540,126,396
333.7
3,791,134,359,155
[]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
9
1,770,540,126,439
375.4
3,791,176,067,488
[ "E", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
10
1,770,540,126,479
417.1
3,791,217,775,821
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
11
1,770,540,126,521
458.8
3,791,259,484,154
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
12
1,770,540,126,566
500.5
3,791,301,192,487
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
13
1,770,540,126,605
542.2
3,791,342,900,820
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
14
1,770,540,126,648
583.9
3,791,384,609,153
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
15
1,770,540,126,689
625.6
3,791,426,317,486
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
16
1,770,540,126,733
667.3
3,791,468,025,819
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
17
1,770,540,126,771
709
3,791,509,734,152
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
18
1,770,540,126,812
750.8
3,791,551,442,485
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
19
1,770,540,126,854
792.5
3,791,593,150,818
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
20
1,770,540,126,897
834.2
3,791,634,859,151
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
21
1,770,540,126,939
875.9
3,791,676,567,484
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
22
1,770,540,126,981
917.6
3,791,718,275,817
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
23
1,770,540,127,026
959.3
3,791,759,984,150
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
24
1,770,540,127,067
1,001
3,791,801,692,483
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
25
1,770,540,127,106
1,042.7
3,791,843,400,816
[ "W" ]
{ "dx": 0, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
26
1,770,540,127,148
1,084.4
3,791,885,109,149
[ "W" ]
{ "dx": -1, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
27
1,770,540,127,190
1,126.1
3,791,926,817,482
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
28
1,770,540,127,232
1,167.8
3,791,968,525,815
[ "W" ]
{ "dx": -1, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
29
1,770,540,127,275
1,209.5
3,792,010,234,148
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
30
1,770,540,127,314
1,251.2
3,792,051,942,481
[ "W" ]
{ "dx": -1, "dy": 1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
31
1,770,540,127,355
1,293
3,792,093,650,814
[ "W" ]
{ "dx": -1, "dy": 2, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
32
1,770,540,127,398
1,334.7
3,792,135,359,147
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
33
1,770,540,127,440
1,376.4
3,792,177,067,480
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
34
1,770,540,127,481
1,418.1
3,792,218,775,813
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
35
1,770,540,127,523
1,459.8
3,792,260,484,146
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
36
1,770,540,127,565
1,501.5
3,792,302,192,479
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
37
1,770,540,127,608
1,543.2
3,792,343,900,812
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
38
1,770,540,127,651
1,584.9
3,792,385,609,145
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
39
1,770,540,127,689
1,626.6
3,792,427,317,478
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
40
1,770,540,127,732
1,668.3
3,792,469,025,811
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
41
1,770,540,127,774
1,710
3,792,510,734,144
[ "W" ]
{ "dx": 0, "dy": -2, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
42
1,770,540,127,815
1,751.7
3,792,552,442,477
[ "W" ]
{ "dx": 0, "dy": -2, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
43
1,770,540,127,858
1,793.5
3,792,594,150,810
[ "W" ]
{ "dx": 0, "dy": -2, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
44
1,770,540,127,898
1,835.2
3,792,635,859,143
[ "W" ]
{ "dx": 1, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
45
1,770,540,127,941
1,876.9
3,792,677,567,476
[ "W" ]
{ "dx": 0, "dy": -1, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
46
1,770,540,127,985
1,918.6
3,792,719,275,809
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
47
1,770,540,128,024
1,960.3
3,792,760,984,142
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
48
1,770,540,128,067
2,002
3,792,802,692,475
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
49
1,770,540,128,111
2,043.7
3,792,844,400,808
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
50
1,770,540,128,146
2,085.4
3,792,886,109,141
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
51
1,770,540,128,190
2,127.1
3,792,927,817,474
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
52
1,770,540,128,233
2,168.8
3,792,969,525,807
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
53
1,770,540,128,275
2,210.5
3,793,011,234,140
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
54
1,770,540,128,316
2,252.2
3,793,052,942,473
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
55
1,770,540,128,360
2,294
3,793,094,650,806
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
56
1,770,540,128,399
2,335.7
3,793,136,359,139
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
57
1,770,540,128,442
2,377.4
3,793,178,067,472
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
58
1,770,540,128,484
2,419.1
3,793,219,775,805
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
59
1,770,540,128,525
2,460.8
3,793,261,484,138
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
60
1,770,540,128,564
2,502.5
3,793,303,192,471
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
61
1,770,540,128,611
2,544.2
3,793,344,900,804
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
62
1,770,540,128,651
2,585.9
3,793,386,609,137
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
63
1,770,540,128,694
2,627.6
3,793,428,317,470
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
64
1,770,540,128,734
2,669.3
3,793,470,025,803
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
65
1,770,540,128,775
2,711
3,793,511,734,136
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
66
1,770,540,128,816
2,752.8
3,793,553,442,469
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
67
1,770,540,128,860
2,794.5
3,793,595,150,802
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
68
1,770,540,128,904
2,836.2
3,793,636,859,135
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
69
1,770,540,128,942
2,877.9
3,793,678,567,468
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
70
1,770,540,128,984
2,919.6
3,793,720,275,801
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
71
1,770,540,129,026
2,961.3
3,793,761,984,134
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
72
1,770,540,129,068
3,003
3,793,803,692,467
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
73
1,770,540,129,111
3,044.7
3,793,845,400,800
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
74
1,770,540,129,149
3,086.4
3,793,887,109,133
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
75
1,770,540,129,190
3,128.1
3,793,928,817,466
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
76
1,770,540,129,231
3,169.8
3,793,970,525,799
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
77
1,770,540,129,275
3,211.5
3,794,012,234,132
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
78
1,770,540,129,318
3,253.2
3,794,053,942,465
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
79
1,770,540,129,358
3,295
3,794,095,650,798
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
80
1,770,540,129,401
3,336.7
3,794,137,359,131
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
81
1,770,540,129,444
3,378.4
3,794,179,067,464
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
82
1,770,540,129,487
3,420.1
3,794,220,775,797
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
83
1,770,540,129,524
3,461.8
3,794,262,484,130
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
84
1,770,540,129,566
3,503.5
3,794,304,192,463
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
85
1,770,540,129,613
3,545.2
3,794,345,900,796
[ "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
86
1,770,540,129,651
3,586.9
3,794,387,609,129
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
87
1,770,540,129,693
3,628.6
3,794,429,317,462
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
88
1,770,540,129,734
3,670.3
3,794,471,025,795
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
89
1,770,540,129,775
3,712
3,794,512,734,128
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
90
1,770,540,129,819
3,753.7
3,794,554,442,461
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
91
1,770,540,129,859
3,795.5
3,794,596,150,794
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
92
1,770,540,129,902
3,837.2
3,794,637,859,127
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
93
1,770,540,129,943
3,878.9
3,794,679,567,460
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
94
1,770,540,129,984
3,920.6
3,794,721,275,793
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
95
1,770,540,130,027
3,962.3
3,794,762,984,126
[ "D", "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
96
1,770,540,130,068
4,004
3,794,804,692,459
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
97
1,770,540,130,114
4,045.7
3,794,846,400,792
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
98
1,770,540,130,152
4,087.4
3,794,888,109,125
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
99
1,770,540,130,193
4,129.1
3,794,929,817,458
[ "LeftShift", "W" ]
{ "dx": 0, "dy": 0, "x": 1403, "y": 677, "scroll_dy": 0, "button": [] }
End of preview.

No Man's Sky High-Fidelity Human-in-the-loop World Model Dataset

Overview

This dataset is designed for world model training using real human gameplay data from No Man’s Sky.
It captures high-fidelity human–computer interaction by recording both the game video and time-aligned input actions, preserving the realistic latency characteristics of a human-in-the-loop system.

Compared with “internal game state” datasets, this dataset retains the physical interaction chain (input → game/render → screen → capture), making it well-suited for training models that need to operate under real-world latency and sensory constraints.

Dataset Structure

Each recording session is stored in a UUID directory.
A typical session contains: / recording.mp4 actions.jsonl events.jsonl metadata.json actions_resampled.jsonl

1) recording.mp4

The recorded gameplay video.

2) actions.jsonl (per-frame input state)

One JSON object per video frame. Each entry contains the input state sampled at frame time.

Schema:

  • frame (int): frame index
  • timestamp_ms (int): wall-clock timestamp in milliseconds
  • frame_pts_ms (float): frame time in milliseconds (PTS-based)
  • capture_ns (int): OBS compositor timestamp in nanoseconds
  • key (string[]): list of pressed keys at this frame
  • mouse (object):
    • dx (int): accumulated mouse delta X during the frame
    • dy (int): accumulated mouse delta Y during the frame
    • x (int): absolute mouse X position
    • y (int): absolute mouse Y position
    • scroll_dy (int): scroll delta during the frame
    • button (string[]): pressed mouse buttons (e.g., LeftButton, Button4)

3) events.jsonl (raw sub-frame input events)

Raw input events with microsecond timing, captured from the OS event stream.

Schema:

  • type (string): event type
    • key_down, key_up, flags_changed
    • mouse_move, mouse_button_down, mouse_button_up
    • scroll
  • timestamp_ms (int): wall-clock timestamp
  • session_offset_us (int): microsecond offset from session start
  • key (string): key name for key events
  • button (string): mouse button name
  • dx, dy, x, y (int): mouse movement
  • scroll_dy (int): scroll delta

4) metadata.json

Session-level metadata and video info.

Schema:

  • stream_name (string): session UUID
  • game_name (string): game name
  • platform (string): mac / windows / linux
  • video_meta (object):
    • width (int)
    • height (int)
    • fps (float)
    • total_frames (int)
    • duration_ms (int)
  • input_latency_bias_ms (number): recommended latency bias for alignment

5) actions_resampled.jsonl

High-precision resampled per-frame actions reconstructed from events.jsonl using latency compensation.
This is the recommended aligned input stream for training.


Suggested Usage

  • For world model training, use recording.<ext> + actions_resampled.jsonl.
  • For analysis or recalibration, use events.jsonl and metadata.json.

Notes

  • The dataset captures realistic system latency; alignment is provided but does not remove physical pipeline delay.
  • This design targets high-fidelity human-in-the-loop interaction for robust world-model learning.
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