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metadata
license: mit
task_categories:
  - robotics
tags:
  - VLA
  - vision-language-action
  - pruning
  - calibration

VLADrop Calibration Data

Calibration sets for the layer-importance profiling in Drop-Then-Recovery (DTR): How Redundant Are Vision-Language-Action Models? (paper · code · checkpoints).

Each file holds the exact 512 samples (64 batches × 8) a profiling run consumes — not the full dataset. Loading these reproduces the paper's GateProbe / baseline-metric block rankings exactly.

File Setting Seed
pi05_libero_dropped_calib_64x8_seed42.pt pi0.5 × LIBERO 42
pi05_libero_plus_calib_64x8_seed42.pt pi0.5 × LIBERO-Plus 42
openvla_libero_calib_64x8_seed9999.pt OpenVLA-OFT × LIBERO 9999
openvla_libero_plus_calib_64x8_seed9999.pt OpenVLA-OFT × LIBERO-Plus 9999

pi0.5 calibration is stored in bfloat16 (pi0.5's runtime precision) and is regenerated deterministically by profiling/pi0.5/dump_calib.py in the code repo.

Usage

huggingface-cli download s1ghhh/VLADrop_Calibration_Data --repo-type dataset \
    --local-dir profiling/calibration_data

See profiling/README.md in the code repo for the full reproduction commands.