license: apache-2.0
task_categories:
- robotics
tags:
- LeRobot
- robotics
- lerobot
- manipulation
- isaac-lab
- data-generation
- MimicGen
configs:
- config_name: default
data_files: data/*/*.parquet
This dataset was created using LeRobot.
Dataset Description
Simulated manipulation demonstrations generated by our MimicGen reimplementation on the RoboLab (Isaac Lab) benchmark. One of 12 cells in a generator x task x difficulty grid.
What this is
| Generator | MimicGen (our reimplementation, not the authors' code) |
| Task | banana |
| Initial-pose randomization | medium — position 50%, yaw ±25° |
| Episodes | 3039 (successes only) |
| Generation success rate | 0.279 |
Action convention — read this before training
Actions are absolute joint targets in the DROID frame (arm 7-DoF with the j7 mount offset applied) plus a binary gripper in {0, 1}. They are not deltas. Applying a delta transform on top will silently produce a different controller.
The binary gripper matters: a continuous gripper channel overestimates downstream policy performance in our measurements, so it is binarized at collection time.
How the data was produced
Source demos (pi05 policy rollouts) -> MimicGen (object-centric SE(3) retargeting) -> for PGDG cells, those MimicGen episodes are in turn the source for the control-point sampler. Every episode is rolled out in physics and only successes are stored, so the generation success rate above is also the cost driver: episodes that fail consume the same simulation budget as ones that succeed.
Difficulty levels randomize the object's initial placement: position as a fraction of the task's feasible radius, and yaw as a half-angle.
Caveats
- Only successful episodes are included. Failure modes are not represented here.
- Success is defined by a K-step settle (hold) criterion in the environment, not a single frame.
- Observations are two cameras (over-shoulder + wrist) at 270x480, 15 fps, plus proprioceptive state.
- Quantile statistics (q01/q99) are precomputed, and videos are re-encoded to constant frame rate so that torchcodec-based dataloaders work.
- This is our reimplementation of the published methods, not the original authors' code. Several hyperparameters are not specified in the papers and were chosen by us.
Visualize
Open in the LeRobot dataset visualizer
- Homepage: [More Information Needed]
- Paper: [More Information Needed]
- License: apache-2.0
Dataset Structure
{
"codebase_version": "v3.0",
"robot_type": "unknown",
"total_episodes": 3039,
"total_frames": 692970,
"total_tasks": 1,
"chunks_size": 1000,
"data_files_size_in_mb": 100,
"video_files_size_in_mb": 200,
"fps": 15,
"splits": {
"train": "0:3039"
},
"data_path": "data/chunk-{chunk_index:03d}/file-{file_index:03d}.parquet",
"video_path": "videos/{video_key}/chunk-{chunk_index:03d}/file-{file_index:03d}.mp4",
"features": {
"action": {
"dtype": "float32",
"shape": [
8
],
"names": {
"motors": [
"j0",
"j1",
"j2",
"j3",
"j4",
"j5",
"j6",
"gripper"
]
},
"fps": 15
},
"observation.state": {
"dtype": "float32",
"shape": [
8
],
"names": {
"motors": [
"joint_0",
"joint_1",
"joint_2",
"joint_3",
"joint_4",
"joint_5",
"joint_6",
"joint_7"
]
},
"fps": 15
},
"observation.velocity": {
"dtype": "float32",
"shape": [
8
],
"names": null,
"fps": 15
},
"episode_index": {
"dtype": "int64",
"shape": [
1
],
"names": null
},
"frame_index": {
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"shape": [
1
],
"names": null
},
"index": {
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"shape": [
1
],
"names": null
},
"task_index": {
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"shape": [
1
],
"names": null
},
"timestamp": {
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"shape": [
1
],
"names": null
},
"next.done": {
"dtype": "bool",
"shape": [
1
],
"names": null,
"fps": 15
},
"observation.images.over_shoulder_left_camera": {
"dtype": "video",
"shape": [
270,
480,
3
],
"names": [
"height",
"width",
"channels"
],
"info": {
"video.height": 270,
"video.width": 480,
"video.codec": "avc1",
"video.pix_fmt": "yuv420p",
"video.is_depth_map": false,
"video.fps": 15.0,
"video.channels": 3,
"has_audio": false
}
},
"observation.images.wrist_cam": {
"dtype": "video",
"shape": [
270,
480,
3
],
"names": [
"height",
"width",
"channels"
],
"info": {
"video.height": 270,
"video.width": 480,
"video.codec": "avc1",
"video.pix_fmt": "yuv420p",
"video.is_depth_map": false,
"video.fps": 15.0,
"video.channels": 3,
"has_audio": false
}
}
}
}
Citation
BibTeX:
[More Information Needed]