GR00T fine-tune

Fine-tuned from nvidia/GR00T-N1.7-3B on 2026-05-28T11:27:53+00:00. Embodiment: UNITREE_G1_SONIC. Trained on 1 GPUs.

Hyperparameters

timestamp           = 2026-05-28T10:18:24+00:00
log_file            = /home/ubuntu/groot-files/logs/train-2026-05-28-101824.log
base_model          = nvidia/GR00T-N1.7-3B
embodiment_tag      = UNITREE_G1_SONIC
dataset_dir         = /home/ubuntu/groot-files/dataset_wbc_train
eval_dataset_dir    = /home/ubuntu/groot-files/dataset_wbc_eval
eval_steps          = 250
eval_num_batches    = 50
checkpoint_dir      = /home/ubuntu/groot-files/checkpoints/run-2026-05-28-101824
num_gpus            = 1
global_batch_size   = 8
max_steps           = 10000
save_steps          = 500
save_total_limit    = 20
learning_rate       = 1e-4
warmup_ratio        = 0.05
weight_decay        = 1e-5
dataloader_workers  = 6
resume              = <none>
use_wandb           = 1
wandb_project       = groot-wbc
wandb_run_name      = groot-wbc-8

Checkpoints

Intermediate checkpoints (checkpoint-N/) are pushed incrementally during training; the top-level files in this repo are the final model state.

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