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RoboQuest Demonstrations
Generalist Physical Agents that Search, Inspect and Test
Project Page | Paper (coming soon) | Code
RoboQuest is a benchmark for goal-directed embodied exploration, in which a mobile manipulator must gather task-relevant information through physical interaction, act on the evidence, and decide for itself when the task is done. This repository holds its demonstration dataset: 5,000 verified demonstrations of the ten RoboQuest tasks (500 per task, 366 hours at 20 Hz) by a Franka Panda arm on a mobile base in RoboCasa365 kitchens, each with a two-level language annotation (stages and subtasks).
Contents
| Path | Format | What it is |
|---|---|---|
lerobot/<task>/ |
LeRobot v2.1 | Three camera streams as video, the robot state and action at every frame, the goal text as the task, and per-frame stage and subtask indices |
raw/<task>/<id>/ |
simulator recordings | The simulator state at every tick, the actions, the stage segments and the captions: enough to replay an episode exactly and render it again at any resolution |
raw/manifest.json |
JSON | Every episode with its kitchen layout and style, task factors, length and the checksum of its states file |
The scene of every demonstration (suite/v1/<task>/demos/) and the tools that produced the LeRobot datasets
(scripts/dataset/) are in the code repository. The demonstration scenes
are development scenes; none of them is one of the benchmark's 500 evaluation instances.
Tasks
| Family | Task | Episodes | Frames | Hours |
|---|---|---|---|---|
| Search & Explore | Locked Storage (locked_storage) |
500 | 2,238,904 | 31.1 |
Search Room (search_room) |
500 | 1,807,513 | 25.1 | |
Blackout Search (blackout_search) |
500 | 4,471,462 | 62.1 | |
| Object Inspect | Painted Cubes (painted_cubes) |
500 | 3,053,005 | 42.4 |
Marked Mugs (marked_mugs) |
500 | 2,018,596 | 28.0 | |
Unfamiliar Containers (unfamiliar_containers) |
500 | 3,813,854 | 53.0 | |
| Testing | Puzzle Box (puzzle_box) |
500 | 983,469 | 13.7 |
Stamp Composition (stamps) |
500 | 2,165,174 | 30.1 | |
Wobbly Stand (wobbly_stand) |
500 | 1,671,246 | 23.2 | |
Odd Parcel (odd_parcel) |
500 | 4,159,509 | 57.8 | |
| Total | 5,000 | 26,382,732 | 366.4 |
LeRobot features
Each lerobot/<task>/ is a LeRobot v2.1 dataset (robot_type: panda_omron, 20 fps):
| Feature | Shape | Contents |
|---|---|---|
image, right_image |
256 × 256 × 3 video | the left and right scene cameras |
wrist_image |
256 × 256 × 3 video | the camera on the gripper |
state |
16 | end-effector position (3) and quaternion xyzw (4) in the robot base frame, base position (3) and quaternion xyzw (4) in the world, the two gripper finger joints (2) |
actions |
12 | the native RoboCasa PandaOmron action: arm motion (6, controller deltas in the base frame), gripper (1: > 0 closes, < 0 opens), base velocity (3), torso (1), mode (1) |
stage_index, subtask_index |
1 | the frame's stage and subtask, indexing meta/stages.jsonl and meta/subtasks.jsonl |
task_index |
1 | the goal text, in meta/tasks.jsonl |
Usage
# one task as a LeRobot dataset
from huggingface_hub import snapshot_download
from lerobot.common.datasets.lerobot_dataset import LeRobotDataset
root = snapshot_download("declare-lab/RoboQuest", repo_type="dataset", allow_patterns="lerobot/puzzle_box/*")
dataset = LeRobotDataset("roboquest/puzzle_box", root=f"{root}/lerobot/puzzle_box")
frame = dataset[0]
# the raw recordings of one task, then render an episode again at another resolution with the code repository
hf download declare-lab/RoboQuest --repo-type dataset --include "raw/puzzle_box/*" --local-dir roboquest-data
git clone https://github.com/declare-lab/RoboQuest && cd RoboQuest
MUJOCO_GL=egl python scripts/dataset/rerender.py ../roboquest-data/raw/puzzle_box/<id> out --sim-size 512 --out-size 256 --mp4
Citation
@misc{liu2026roboquest,
title = {{RoboQuest}: Generalist Physical Agents that Search, Inspect and Test},
author = {Liu, Renhang and Majumder, Navonil and Pala, Tej Deep and Poria, Soujanya},
year = {2026},
note = {arXiv preprint (coming soon)}
}
License
To be announced.
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