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Error code: DatasetGenerationError
Exception: ArrowInvalid
Message: Schema at index 1 was different:
MonsterEnergyDrink: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CocaCola-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CocaCola-500ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-1000ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-250ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-200ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pepsi-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CestbonWater-555ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WatsonsSodaWater-330ml-Black: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WatsonsSodaWater-330ml-Red: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NongfuSpringWater-550ml-Red: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NongfuSpringWater-550ml-Green: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Sprite-500ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
GantenWater-560ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pepsi-900ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
7Up-550ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SanlinCoconutWater-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SamyangSpicyChickenCupNoodles: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ShinRamyunCupNoodles: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
OreoCookies: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CannedLuncheonMeat: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
LaysChips-Tube-CucumberFlavor: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
LaysChips-Tube-OriginalFlavor: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Snickers: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Spaghetti: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RiceBrick: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Apple: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Banana: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Orange: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Tomato: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Cucumber: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pear: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Corn: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Carrot: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
BellPepper: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pot: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Mug: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SprayBottle: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ElectricToothbrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
BodyWash: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
GlassBowl: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Toothpaste: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NarrowTape: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WideTape: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Towel: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Umbrella: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ElectricShaver: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Perfume: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Clip: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Detergent: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PaintBrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ShoeBrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Sponge: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ModelCar: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Dumbbell: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
TennisBall: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
KidsBasketball: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RubiksCube: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PowerBank-20000mAh: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RemoteControl: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Screwdriver: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
TapeMeasure: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WoodenStick: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
vs
p001: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p002: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p003: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p004: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p005: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p006: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p007: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p008: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p009: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p010: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p011: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p012: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
Traceback: Traceback (most recent call last):
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1858, in _prepare_split_single
num_examples, num_bytes = writer.finalize()
~~~~~~~~~~~~~~~^^
File "/usr/local/lib/python3.14/site-packages/datasets/arrow_writer.py", line 781, in finalize
self.write_rows_on_file()
~~~~~~~~~~~~~~~~~~~~~~~^^
File "/usr/local/lib/python3.14/site-packages/datasets/arrow_writer.py", line 662, in write_rows_on_file
table = pa.concat_tables(self.current_rows)
File "pyarrow/table.pxi", line 6320, in pyarrow.lib.concat_tables
File "pyarrow/error.pxi", line 155, in pyarrow.lib.pyarrow_internal_check_status
return check_status(status)
File "pyarrow/error.pxi", line 92, in pyarrow.lib.check_status
raise convert_status(status)
pyarrow.lib.ArrowInvalid: Schema at index 1 was different:
MonsterEnergyDrink: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CocaCola-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CocaCola-500ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-1000ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-250ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PureMilk-200ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pepsi-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CestbonWater-555ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WatsonsSodaWater-330ml-Black: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WatsonsSodaWater-330ml-Red: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NongfuSpringWater-550ml-Red: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NongfuSpringWater-550ml-Green: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Sprite-500ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
GantenWater-560ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pepsi-900ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
7Up-550ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SanlinCoconutWater-330ml: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SamyangSpicyChickenCupNoodles: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ShinRamyunCupNoodles: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
OreoCookies: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
CannedLuncheonMeat: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
LaysChips-Tube-CucumberFlavor: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
LaysChips-Tube-OriginalFlavor: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Snickers: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Spaghetti: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RiceBrick: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Apple: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Banana: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Orange: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Tomato: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Cucumber: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pear: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Corn: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Carrot: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
BellPepper: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Pot: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Mug: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
SprayBottle: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ElectricToothbrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
BodyWash: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
GlassBowl: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Toothpaste: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
NarrowTape: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WideTape: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Towel: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Umbrella: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ElectricShaver: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Perfume: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Clip: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Detergent: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PaintBrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ShoeBrush: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Sponge: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
ModelCar: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Dumbbell: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
TennisBall: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
KidsBasketball: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RubiksCube: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
PowerBank-20000mAh: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
RemoteControl: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
Screwdriver: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
TapeMeasure: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
WoodenStick: struct<category: string, weight_g: int64, surface_material: string, fill_state: string>
vs
p001: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p002: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p003: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p004: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p005: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p006: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p007: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p008: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p009: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p010: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p011: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
p012: struct<gender: string, weight: int64, bodyfat: int64, age: int64, dominant_hand: string, hand_length: double>
The above exception was the direct cause of the following exception:
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 1683, 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 1869, in _prepare_split_single
raise DatasetGenerationError("An error occurred while generating the dataset") from e
datasets.exceptions.DatasetGenerationError: An error occurred while generating the datasetNeed 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_id int64 | timestamp float64 | camera_timestamp float64 | task_hand string | object_name string | object_weight int64 | object_material string | RH dict |
|---|---|---|---|---|---|---|---|
0 | 1,768,720,780.314457 | 1,768,720,780.267763 | r | Apple | 0 | none | {
"sensor_256": [
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1 | 1,768,720,780.382937 | 1,768,720,780.363774 | r | Apple | 0 | none | {
"sensor_256": [
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2 | 1,768,720,780.449937 | 1,768,720,780.411938 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
3 | 1,768,720,780.516606 | 1,768,720,780.508457 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
4 | 1,768,720,780.583384 | 1,768,720,780.556 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
5 | 1,768,720,780.650336 | 1,768,720,780.636338 | r | Apple | 0 | none | {
"sensor_256": [
0,
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0... |
6 | 1,768,720,780.717069 | 1,768,720,780.684162 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
7 | 1,768,720,780.784443 | 1,768,720,780.780439 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
8 | 1,768,720,780.853164 | 1,768,720,780.843748 | r | Apple | 0 | none | {
"sensor_256": [
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0... |
9 | 1,768,720,780.920811 | 1,768,720,780.908823 | r | Apple | 0 | none | {
"sensor_256": [
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10 | 1,768,720,780.988927 | 1,768,720,780.972315 | r | Apple | 0 | none | {
"sensor_256": [
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EgoTactile: Learning Grasp Pressure for Everyday Objects from Egocentric Video
This repository contains the official dataset for:
EgoTactile: Learning Grasp Pressure for Everyday Objects from Egocentric Video
ICML 2026 Spotlight
- Paper: https://arxiv.org/abs/2606.09243
- Project Page: https://egotactile.github.io/
Dataset Summary
EgoTactile is a large-scale benchmark that pairs egocentric RGB video with synchronized full-hand pressure measurements during everyday object grasping.
The dataset is designed to support research on estimating dynamic grasp pressure from visual observations. This task is challenging because hand-object contact regions are frequently occluded, while visually similar grasping observations may correspond to different pressure distributions.
EgoTactile includes:
- 12 participants
- 63 everyday objects
- 7 object categories
- Egocentric RGB video recorded at 1280 × 720 resolution and 15 FPS
- Full-hand tactile pressure measurements from 162 sensing locations
- Pressure measurements within a 0–350 N range
- Object and participant metadata
- Temporally synchronized visual and tactile streams at 15 Hz
- A bare-hand subset for evaluating transfer to natural hand appearances
Associated Methods
The accompanying paper introduces two methods evaluated on EgoTactile:
- EgoPressureFormer, a discriminative baseline for full-hand grasp-pressure estimation from egocentric video.
- EgoPressureDiff, a conditional diffusion framework that adapts a pretrained video diffusion backbone for pressure estimation under partial visual observations and physical ambiguity.
Please refer to the paper for complete methodological and experimental details.
Dataset Organization
The dataset consists of two primary subsets corresponding to different acquisition protocols.
1. Gloved-Hand Set
The Gloved-Hand Set contains synchronized egocentric RGB videos and tactile pressure measurements collected while participants wear the tactile sensing glove.
Purpose
This subset provides direct supervision for learning mappings from egocentric video observations to full-hand pressure distributions.
Contents
- Egocentric RGB video frames
- Synchronized 162-dimensional pressure measurements
- Object metadata
- Anonymized participant metadata
- Temporal and sequence identifiers
2. Bare-Hand Set
The Bare-Hand Set is designed to evaluate transfer to natural hand appearances without a visible tactile glove.
During data acquisition, the hand visible to the egocentric camera is bare, while a synchronized off-camera gloved hand performs the corresponding grasping action and provides the tactile pressure reference. The two actions are coordinated using metronome guidance.
Purpose
This subset supports evaluation of transfer from instrumented gloved-hand observations to natural bare-hand scenarios.
Contents
- Egocentric RGB videos of bare-hand grasping
- Synchronized tactile pressure references
- Object metadata
- Anonymized participant metadata
- Temporal and sequence identifiers
Modalities
Egocentric RGB Video
- Resolution: 1280 × 720
- Frame rate: 15 FPS
- Viewpoint: head-mounted egocentric camera
- Content: hand-object grasping interactions
Tactile Pressure
- Number of sensing locations: 162
- Sampling rate: 15 Hz after synchronization
- Pressure range: 0–350 N
- Coverage: full-hand tactile sensing
- Alignment: temporally synchronized with the RGB video stream
Object Metadata
Object metadata includes:
- Object name
- Object category
- Weight
- Surface material
- Fill state
Participant Metadata
Participant metadata includes:
- Anonymized participant ID (
p001–p012) - Gender
- Hand length
Participant identities are not included in the released dataset.
Intended Uses
EgoTactile is intended for research in areas including:
- Grasp-pressure estimation
- Vision-based tactile inference
- Egocentric hand-object interaction understanding
- Multimodal representation learning
- Tactile sensing
- Robotic manipulation
- Human-robot interaction
- Transfer from instrumented hands to natural bare hands
Limitations
Users should consider the following limitations:
- The dataset contains a finite set of participants, objects, and grasping behaviors.
- Data were collected under controlled acquisition conditions.
- Pressure references in the Bare-Hand Set are obtained through synchronized paired actions rather than direct sensing on the visible bare hand.
- Performance on unseen environments, camera configurations, object types, and manipulation behaviors may differ from the reported benchmark results.
- Participant-level attributes should not be used for identity inference or unintended profiling.
License
EgoTactile is released under the Creative Commons Attribution-NonCommercial 4.0 International License, abbreviated as CC BY-NC 4.0.
The dataset may be used for non-commercial research purposes with appropriate attribution. Users are responsible for complying with the license terms.
Citation
Please cite the following paper when using EgoTactile:
@article{zeng2026egotactile,
title = {EgoTactile: Learning Grasp Pressure for Everyday Objects from Egocentric Video},
author = {Zeng, Yuan and Shi, Yujia and Tan, Tiao and Li, Xingting and Qin, Yaqi and Lu, Zongqing and Yang, Wenming and Xue, Jing-Hao and Liao, Qingmin},
journal = {arXiv preprint arXiv:2606.09243},
year = {2026}
}
Contact
For questions about the dataset, benchmark, or accompanying paper, please refer to the contact information provided on the project page or open an issue in the corresponding public repository.
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