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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 1 new columns ({'options'})
This happened while the json dataset builder was generating data using
zip://output/relative_distance.jsonl::hf://datasets/Ever2after/3d-spatial-reasoning-2@c33d82b10ddebbe8da73f522c43cd79468adde35/output.zip
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 1831, in _prepare_split_single
writer.write_table(table)
File "/usr/local/lib/python3.12/site-packages/datasets/arrow_writer.py", line 714, 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
question: string
answer: string
options: list<item: string>
child 0, item: string
images: list<item: string>
child 0, item: string
scene_id: string
region_idx: int64
to
{'scene_id': Value('string'), 'region_idx': Value('int64'), 'question': Value('string'), 'answer': Value('int64'), 'images': 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 1450, in compute_config_parquet_and_info_response
parquet_operations, partial, estimated_dataset_info = stream_convert_to_parquet(
^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 993, in stream_convert_to_parquet
builder._prepare_split(
File "/usr/local/lib/python3.12/site-packages/datasets/builder.py", line 1702, 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 1833, 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 1 new columns ({'options'})
This happened while the json dataset builder was generating data using
zip://output/relative_distance.jsonl::hf://datasets/Ever2after/3d-spatial-reasoning-2@c33d82b10ddebbe8da73f522c43cd79468adde35/output.zip
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.
scene_id string | region_idx int64 | question string | answer int64 | images list |
|---|---|---|---|---|
104348082_171512994 | 0 | How many book are in the scene? | 2 | [
"view_006.png",
"view_004.png",
"view_007.png",
"view_005.png",
"view_009.png"
] |
102344250 | 0 | How many bin are in the scene? | 1 | [
"view_008.png",
"view_017.png"
] |
102344250 | 1 | How many seat are in the scene? | 6 | [
"view_001.png",
"view_011.png",
"view_012.png",
"view_005.png"
] |
102344250 | 5 | How many lamp are in the scene? | 9 | [
"view_005.png",
"view_006.png"
] |
105515286_173104287 | 0 | How many car are in the scene? | 2 | [
"view_014.png",
"view_016.png",
"view_008.png",
"view_001.png",
"view_025.png"
] |
105515286_173104287 | 5 | How many table are in the scene? | 2 | [
"view_012.png",
"view_000.png"
] |
105515286_173104287 | 9 | How many beam are in the scene? | 3 | [
"view_010.png",
"view_007.png",
"view_023.png",
"view_022.png",
"view_002.png"
] |
105515286_173104287 | 13 | How many seat are in the scene? | 2 | [
"view_003.png",
"view_002.png",
"view_008.png"
] |
105515286_173104287 | 22 | How many seat are in the scene? | 2 | [
"view_002.png",
"view_010.png"
] |
105515286_173104287 | 23 | How many curtain are in the scene? | 2 | [
"view_011.png",
"view_001.png",
"view_008.png",
"view_005.png"
] |
107734056_175999839 | 8 | How many cabinet are in the scene? | 4 | [
"view_007.png",
"view_001.png",
"view_006.png",
"view_002.png"
] |
107734056_175999839 | 13 | How many car are in the scene? | 1 | [
"view_000.png",
"view_004.png",
"view_003.png"
] |
103997940_171031257 | 0 | How many rack are in the scene? | 5 | [
"view_010.png",
"view_002.png"
] |
103997940_171031257 | 1 | How many car are in the scene? | 2 | [
"view_002.png",
"view_022.png"
] |
103997940_171031257 | 7 | How many flowerpot are in the scene? | 1 | [
"view_013.png",
"view_003.png",
"view_010.png"
] |
103997940_171031257 | 8 | How many shelf are in the scene? | 2 | [
"view_014.png",
"view_015.png",
"view_021.png",
"view_020.png"
] |
103997940_171031257 | 12 | How many picture are in the scene? | 3 | [
"view_009.png",
"view_001.png",
"view_007.png",
"view_005.png"
] |
103997940_171031257 | 13 | How many cabinet are in the scene? | 4 | [
"view_000.png",
"view_004.png",
"view_001.png"
] |
103997940_171031257 | 14 | How many speaker are in the scene? | 4 | [
"view_010.png",
"view_013.png",
"view_001.png"
] |
103997940_171031257 | 17 | How many floor are in the scene? | 6 | [
"view_009.png",
"view_010.png"
] |
103997940_171031257 | 28 | How many tap are in the scene? | 2 | [
"view_000.png",
"view_003.png"
] |
103997940_171031257 | 33 | How many plant are in the scene? | 2 | [
"view_012.png",
"view_002.png"
] |
103997586_171030669 | 3 | How many plant are in the scene? | 5 | [
"view_001.png",
"view_000.png"
] |
103997586_171030669 | 4 | How many plant are in the scene? | 4 | [
"view_007.png",
"view_003.png"
] |
103997586_171030669 | 9 | How many seat are in the scene? | 1 | [
"view_007.png",
"view_002.png"
] |
103997586_171030669 | 12 | How many picture are in the scene? | 2 | [
"view_000.png",
"view_008.png",
"view_007.png"
] |
103997586_171030669 | 13 | How many lamp are in the scene? | 5 | [
"view_006.png",
"view_003.png"
] |
104348361_171513414 | 3 | How many table are in the scene? | 3 | [
"view_015.png",
"view_018.png",
"view_005.png",
"view_006.png"
] |
104348361_171513414 | 7 | How many kitchen lower cabinet are in the scene? | 1 | [
"view_007.png",
"view_002.png"
] |
103997919_171031233 | 0 | How many table are in the scene? | 2 | [
"view_010.png",
"view_006.png",
"view_009.png",
"view_008.png",
"view_004.png"
] |
103997919_171031233 | 3 | How many picture are in the scene? | 4 | [
"view_002.png",
"view_008.png",
"view_000.png",
"view_003.png"
] |
108294537_176710050 | 3 | How many pillow are in the scene? | 7 | [
"view_002.png",
"view_003.png",
"view_012.png",
"view_007.png"
] |
108294537_176710050 | 4 | How many candle are in the scene? | 2 | [
"view_018.png",
"view_019.png",
"view_004.png",
"view_009.png"
] |
108294537_176710050 | 5 | How many carpet are in the scene? | 1 | [
"view_022.png",
"view_010.png",
"view_005.png"
] |
108294537_176710050 | 6 | How many towel are in the scene? | 1 | [
"view_001.png",
"view_012.png",
"view_013.png",
"view_019.png",
"view_005.png"
] |
108294537_176710050 | 7 | How many mirror are in the scene? | 2 | [
"view_008.png",
"view_005.png"
] |
108294537_176710050 | 10 | How many shelf are in the scene? | 1 | [
"view_001.png",
"view_015.png"
] |
108294537_176710050 | 13 | How many seat are in the scene? | 3 | [
"view_000.png",
"view_012.png",
"view_013.png",
"view_006.png",
"view_003.png"
] |
102344529 | 0 | How many plant are in the scene? | 1 | [
"view_006.png",
"view_010.png"
] |
102344529 | 2 | How many lamp are in the scene? | 2 | [
"view_000.png",
"view_006.png",
"view_020.png",
"view_018.png"
] |
102344529 | 4 | How many flowerpot are in the scene? | 3 | [
"view_003.png",
"view_001.png"
] |
102344529 | 7 | How many lamp are in the scene? | 2 | [
"view_013.png",
"view_004.png",
"view_012.png"
] |
104348082_171512994 | 0 | Which object is closer to table? | A | [
"view_004.png",
"view_008.png"
] |
104348082_171512994 | 0 | Which object is closer to the viewpoint of the 4th image? | A | [
"view_006.png",
"view_005.png",
"view_003.png",
"view_007.png"
] |
104348082_171512994 | 0 | Which image's viewpoint is closer to vase? | B | [
"view_001.png",
"view_003.png",
"view_009.png",
"view_008.png"
] |
104348082_171512994 | 0 | Which image's viewpoint is closer to the viewpoint of the 5th image? | B | [
"view_001.png",
"view_008.png",
"view_005.png",
"view_003.png",
"view_006.png"
] |
102344250 | 0 | Which object is closer to sink_cabinet? | B | [
"view_005.png",
"view_006.png",
"view_018.png",
"view_001.png"
] |
102344250 | 0 | Which object is closer to the viewpoint of the 2nd image? | B | [
"view_015.png",
"view_002.png",
"view_017.png",
"view_004.png"
] |
102344250 | 0 | Which image's viewpoint is closer to bin? | B | [
"view_016.png",
"view_008.png",
"view_018.png",
"view_007.png",
"view_013.png"
] |
102344250 | 0 | Which image's viewpoint is closer to the viewpoint of the 3rd image? | A | [
"view_008.png",
"view_014.png",
"view_015.png",
"view_011.png",
"view_001.png"
] |
102344250 | 1 | Which object is closer to clock? | A | [
"view_000.png",
"view_011.png",
"view_004.png"
] |
102344250 | 1 | Which object is closer to the viewpoint of the 2nd image? | B | [
"view_011.png",
"view_003.png"
] |
102344250 | 1 | Which image's viewpoint is closer to clock? | B | [
"view_000.png",
"view_001.png"
] |
102344250 | 1 | Which image's viewpoint is closer to the viewpoint of the 1st image? | B | [
"view_001.png",
"view_005.png",
"view_012.png",
"view_000.png"
] |
102344250 | 5 | Which object is closer to wardrobe? | B | [
"view_009.png",
"view_001.png",
"view_004.png",
"view_011.png",
"view_003.png"
] |
102344250 | 5 | Which object is closer to the viewpoint of the 2nd image? | A | [
"view_010.png",
"view_004.png"
] |
102344250 | 5 | Which image's viewpoint is closer to wardrobe? | B | [
"view_000.png",
"view_009.png",
"view_001.png",
"view_006.png",
"view_003.png"
] |
102344250 | 5 | Which image's viewpoint is closer to the viewpoint of the 2nd image? | A | [
"view_007.png",
"view_009.png",
"view_002.png",
"view_003.png",
"view_000.png"
] |
105515286_173104287 | 0 | Which object is closer to ventilation_hood? | A | [
"view_021.png",
"view_005.png",
"view_000.png",
"view_015.png",
"view_013.png"
] |
105515286_173104287 | 0 | Which object is closer to the viewpoint of the 3rd image? | A | [
"view_020.png",
"view_011.png",
"view_012.png",
"view_021.png"
] |
105515286_173104287 | 0 | Which image's viewpoint is closer to ladder? | A | [
"view_010.png",
"view_023.png"
] |
105515286_173104287 | 0 | Which image's viewpoint is closer to the viewpoint of the 4th image? | A | [
"view_020.png",
"view_019.png",
"view_004.png",
"view_022.png",
"view_009.png"
] |
105515286_173104287 | 5 | Which object is closer to fridge? | B | [
"view_005.png",
"view_007.png",
"view_016.png",
"view_010.png"
] |
105515286_173104287 | 5 | Which object is closer to the viewpoint of the 4th image? | B | [
"view_006.png",
"view_002.png",
"view_004.png",
"view_000.png",
"view_017.png"
] |
105515286_173104287 | 5 | Which image's viewpoint is closer to stool? | A | [
"view_009.png",
"view_008.png",
"view_005.png"
] |
105515286_173104287 | 5 | Which image's viewpoint is closer to the viewpoint of the 4th image? | A | [
"view_002.png",
"view_000.png",
"view_008.png",
"view_014.png"
] |
105515286_173104287 | 9 | Which object is closer to table? | A | [
"view_003.png",
"view_004.png",
"view_008.png",
"view_000.png"
] |
105515286_173104287 | 9 | Which object is closer to the viewpoint of the 4th image? | A | [
"view_018.png",
"view_001.png",
"view_023.png",
"view_022.png"
] |
105515286_173104287 | 9 | Which image's viewpoint is closer to firewood_holder? | B | [
"view_011.png",
"view_017.png",
"view_005.png",
"view_006.png",
"view_012.png"
] |
105515286_173104287 | 9 | Which image's viewpoint is closer to the viewpoint of the 2nd image? | A | [
"view_004.png",
"view_008.png",
"view_010.png"
] |
105515286_173104287 | 13 | Which object is closer to record_player? | B | [
"view_005.png",
"view_006.png",
"view_008.png",
"view_002.png"
] |
105515286_173104287 | 13 | Which object is closer to the viewpoint of the 3rd image? | B | [
"view_001.png",
"view_007.png",
"view_003.png",
"view_000.png"
] |
105515286_173104287 | 13 | Which image's viewpoint is closer to plant? | A | [
"view_005.png",
"view_011.png",
"view_001.png",
"view_007.png",
"view_009.png"
] |
105515286_173104287 | 13 | Which image's viewpoint is closer to the viewpoint of the 1st image? | A | [
"view_004.png",
"view_005.png",
"view_002.png"
] |
107734056_175999839 | 8 | Which object is closer to couch? | B | [
"view_001.png",
"view_006.png"
] |
107734056_175999839 | 8 | Which object is closer to the viewpoint of the 3rd image? | A | [
"view_007.png",
"view_006.png",
"view_005.png"
] |
107734056_175999839 | 8 | Which image's viewpoint is closer to carpet? | A | [
"view_002.png",
"view_006.png",
"view_008.png",
"view_004.png",
"view_003.png"
] |
107734056_175999839 | 8 | Which image's viewpoint is closer to the viewpoint of the 3rd image? | B | [
"view_003.png",
"view_008.png",
"view_009.png",
"view_000.png"
] |
107734056_175999839 | 13 | Which object is closer to washing_machine_and_dryer? | B | [
"view_004.png",
"view_002.png",
"view_006.png"
] |
107734056_175999839 | 13 | Which object is closer to the viewpoint of the 1st image? | B | [
"view_004.png",
"view_007.png",
"view_000.png",
"view_006.png",
"view_008.png"
] |
107734056_175999839 | 13 | Which image's viewpoint is closer to car? | B | [
"view_004.png",
"view_000.png"
] |
107734056_175999839 | 13 | Which image's viewpoint is closer to the viewpoint of the 3rd image? | A | [
"view_001.png",
"view_008.png",
"view_005.png",
"view_003.png",
"view_007.png"
] |
103997586_171030669 | 3 | Which object is closer to painting? | A | [
"view_000.png",
"view_005.png"
] |
103997586_171030669 | 3 | Which object is closer to the viewpoint of the 4th image? | A | [
"view_016.png",
"view_008.png",
"view_005.png",
"view_001.png"
] |
103997586_171030669 | 3 | Which image's viewpoint is closer to painting? | B | [
"view_012.png",
"view_001.png",
"view_002.png",
"view_010.png",
"view_014.png"
] |
103997586_171030669 | 3 | Which image's viewpoint is closer to the viewpoint of the 2nd image? | A | [
"view_010.png",
"view_001.png",
"view_000.png",
"view_007.png",
"view_006.png"
] |
103997586_171030669 | 4 | Which object is closer to book? | B | [
"view_005.png",
"view_006.png",
"view_000.png"
] |
103997586_171030669 | 4 | Which object is closer to the viewpoint of the 1st image? | B | [
"view_005.png",
"view_001.png",
"view_009.png"
] |
103997586_171030669 | 4 | Which image's viewpoint is closer to couch? | A | [
"view_009.png",
"view_007.png"
] |
103997586_171030669 | 4 | Which image's viewpoint is closer to the viewpoint of the 1st image? | A | [
"view_009.png",
"view_004.png",
"view_002.png",
"view_003.png",
"view_007.png"
] |
103997586_171030669 | 9 | Which object is closer to decoration? | A | [
"view_014.png",
"view_011.png",
"view_025.png"
] |
103997586_171030669 | 9 | Which object is closer to the viewpoint of the 1st image? | A | [
"view_001.png",
"view_028.png"
] |
103997586_171030669 | 9 | Which image's viewpoint is closer to seat? | A | [
"view_004.png",
"view_013.png"
] |
103997586_171030669 | 9 | Which image's viewpoint is closer to the viewpoint of the 2nd image? | B | [
"view_013.png",
"view_002.png",
"view_003.png"
] |
103997586_171030669 | 12 | Which object is closer to flowerpot? | B | [
"view_007.png",
"view_005.png"
] |
103997586_171030669 | 12 | Which object is closer to the viewpoint of the 3rd image? | B | [
"view_001.png",
"view_005.png",
"view_013.png",
"view_011.png"
] |
103997586_171030669 | 12 | Which image's viewpoint is closer to shelf? | A | [
"view_000.png",
"view_003.png",
"view_010.png"
] |
103997586_171030669 | 12 | Which image's viewpoint is closer to the viewpoint of the 2nd image? | A | [
"view_000.png",
"view_004.png",
"view_005.png",
"view_013.png",
"view_009.png"
] |
103997586_171030669 | 13 | Which object is closer to couch? | A | [
"view_004.png",
"view_002.png",
"view_000.png",
"view_001.png"
] |
103997586_171030669 | 13 | Which object is closer to the viewpoint of the 1st image? | A | [
"view_003.png",
"view_005.png",
"view_009.png"
] |
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