adrfm / sort_b601_simple_makelab_diepenbeek_filtered_act_v2

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Total runs: 39
24-hour runs: 0
7-day runs: 0
30-day runs: 20
Model's Last Updated: September 15 2026
robotics

Introduction of sort_b601_simple_makelab_diepenbeek_filtered_act_v2

Model Details of sort_b601_simple_makelab_diepenbeek_filtered_act_v2

Model Card for act

Action Chunking with Transformers (ACT) is an imitation-learning method that predicts short action chunks instead of single steps. It learns from teleoperated data and often achieves high success rates.

This policy has been trained and pushed to the Hub using LeRobot .

Learn how to train and run it in the LeRobot act guide , or browse the full documentation .


Model Details
  • License: apache-2.0
  • Robot type: seeed_b601_rs_follower
  • Cameras: side , wrist
Inputs & Outputs

The policy consumes these observation features and produces these action features.

Inputs

Feature Type Shape
observation.state STATE (7,)
observation.images.side VISUAL (3, 480, 640)
observation.images.wrist VISUAL (3, 480, 640)

Outputs

Feature Type Shape
action ACTION (7,)
Training Dataset
Training Configuration
Setting Value
Training steps 55600
Batch size 8
Optimizer adamw
Learning rate 1e-05
Seed 1000
LeRobot version 0.6.2

How to Get Started with the Model

New to LeRobot? These guides cover the full workflow:

The short version to run and train this policy:

Run the policy on your robot
lerobot-rollout \
  --strategy.type=base \
  --robot.type=seeed_b601_rs_follower \
  --robot.port=<your_robot_port> \
  --robot.cameras="{ <camera_1>: {type: opencv, index_or_path: <index_or_path>, width: 640, height: 480, fps: 30}, <camera_2>: {type: opencv, index_or_path: <index_or_path>, width: 640, height: 480, fps: 30}}" \
  --policy.path=adrfm/sort_b601_simple_makelab_diepenbeek_filtered_act_v2 \
  --task="Pick disks from grey plate and place black disk on red plate, white disk on blue plate" \
  --duration=60

Replace the remaining <...> placeholders with your own values: --robot.port and the camera names/indices are specific to your machine, and the camera names must match the observation keys this policy was trained on.

When --strategy.type=base is used the script doesn't record the episodes. Skipping duration will make the policy run indefinitely. For more information look at rollout documentation .

Train your own policy
lerobot-train \
  --dataset.repo_id=${HF_USER}/<dataset> \
  --policy.type=act \
  --output_dir=outputs/train/<policy_repo_id> \
  --job_name=lerobot_training \
  --policy.device=cuda \
  --policy.repo_id=${HF_USER}/<policy_repo_id> \
  --wandb.enable=true

Writes checkpoints to outputs/train/<policy_repo_id>/checkpoints/ .


Evaluation

No evaluation results have been provided for this policy yet.


Citation

If you use this policy, please cite the method linked in the description above, along with LeRobot:

@misc{cadene2024lerobot,
    author = {Cadene, Remi and Alibert, Simon and Soare, Alexander and Gallouedec, Quentin and Zouitine, Adil and Palma, Steven and Kooijmans, Pepijn and Aractingi, Michel and Shukor, Mustafa and Aubakirova, Dana and Russi, Martino and Capuano, Francesco and Pascal, Caroline and Choghari, Jade and Moss, Jess and Wolf, Thomas},
    title = {LeRobot: State-of-the-art Machine Learning for Real-World Robotics in Pytorch},
    howpublished = "\url{https://github.com/huggingface/lerobot}",
    year = {2024}
}

Runs of adrfm sort_b601_simple_makelab_diepenbeek_filtered_act_v2 on huggingface.co

39
Total runs
0
24-hour runs
0
3-day runs
0
7-day runs
20
30-day runs

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sort_b601_simple_makelab_diepenbeek_filtered_act_v2 install

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