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AAyano/gate_setting2_chunksize25_batch32_from20000
gate_setting2_chunksize25_batch32_from20000 is a robotics model from AAyano. Use it for the robotics task on the model card, and read the license before you ship it in a product. It is set up for transformers. The card lists the license as mit.
Task-conditioned text-token-gate OpenVLA-OFT model for real-world XArm, setting 2: cup stacking. Trained fresh for 10000 steps on top of the oftsetting2chunksize25batch3220k OFT backbone (action head / proprio project…
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From the Hugging Face model README
Task-conditioned text-token-gate OpenVLA-OFT model for real-world XArm, setting 2: cup stacking. Trained fresh for 10000 steps on top of the oft_setting2_chunksize25_batch32_20k OFT backbone (action head / proprio projector / FiLM re-trained; cosine LR 5e-4 with 1000 warmup, effective batch 32, seed 6).
config.json)self_attention (dim 512, 8 heads, 1 layer), gate MLP hidden 512 / depth 1contrastive_alignment_score (visual τ 0.1, text τ 0.05), instruction-only pooling, stopword filteringthreshold mode, threshold 0.3, strength 0.5The gate modules live in this repo's modeling_prismatic.py (loaded via trust_remote_code), but the openvla-oft serve flow syncs the local repo's modeling files INTO the checkpoint before loading. Serve with REPO_DIR pointing at the Task-conditioned_Gate repo — serving with vanilla openvla-oft silently drops the gate weights.
model-*.safetensors, gate config in config.json)lora_adapter/ — LoRA + gate weights (modules_to_save=["text_token_gate"]), standalone copyaction_head--10000_checkpoint.pt, proprio_projector--10000_checkpoint.pt, vision_backbone--10000_checkpoint.pt (FiLM)dataset_statistics.json, oft_training_config.json (chunk 25, action dim 7, proprio dim 6, BOUNDS_Q99)