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pengyue-polaron/lingbot-va-galaxea-a1-mango-plate-eef-step-100

sourceHugging Faceapache-2.0updated 12d agoView on Hugging Face
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Model Card

LingBot-VA — Galaxea A1 Mango-to-Plate EEF — Step 100

LingBot-VA fine-tuned for red-mango placement onto a blue plate with a Galaxea A1 arm. The model predicts robot actions and video latents.

Data

Training demonstrations.

FieldValue
Episodes26
Frames8,783 at 30 FPS
TasksPut the red mango into the blue plate
Camerasfront 480×480 RGB; wrist 640×480 RGB
ActionEpisode-relative EEF pose + continuous normalized gripper

Training epochs

Approximately 61.54 equivalent fine-tuning epochs, calculated as 100 optimizer updates × 16 effective global batch size / 26 training segments. Each selected episode contributes one latent training segment; the denominator is the segment count, not the raw video-frame count. This estimate assumes all selected segments have valid latent caches and excludes base-model pretraining. See training_summary.json.

Files and configuration

transformer/ contains the step-100 weights. The base tokenizer, text encoder, and VAE are included. Use configs/va_a1_cfg.py for the EEF action mapping and normalization.

Training details · Training summary

License

Apache License 2.0. See LICENSE.txt.