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Single-segment full-length autoregressive rollout for single-arm singleview DreamDojo.
For each episode:
- Start from the first GT frame.
- Rollout autoregressively (chunk_size actions per step) for the ENTIRE episode
length — no GT reset between segments. Pure autoregressive drift test.
- GT video and actions come from the dataset pipeline (properly normalized/resized).
Output matches the benchmark format: full_gt.mp4, full_pred.mp4, full_merged.mp4, metrics.json.
"""
import argparse
import json
import sys
from pathlib import Path
import mediapy
import numpy as np
import piq
import torch
import torchvision
ROOT = Path(__file__).resolve().parent.parent
sys.path.insert(0, str(ROOT / "models" / "DreamDojo"))
def parse_args():
parser = argparse.ArgumentParser()
parser.add_argument("--checkpoints-dir", type=str, required=True)
parser.add_argument("--experiment", type=str, default="dreamdojo_2b_480_640_single_arm_sv")
parser.add_argument("--dataset-path", type=str, required=True)
parser.add_argument("--save-dir", type=str, required=True)
parser.add_argument("--chunk-size", type=int, default=12)
parser.add_argument("--num-episodes", type=int, default=1)
parser.add_argument("--save-fps", type=int, default=15)
parser.add_argument("--output-dir", type=str, default=None)
return parser.parse_args()
def build_model(args):
from cosmos_predict2.action_conditioned_config import ActionConditionedSetupArguments
from cosmos_predict2.config import MODEL_CHECKPOINTS
from cosmos_predict2._src.predict2.inference.video2world import Video2WorldInference
from cosmos_predict2.cache_runtime import build_cache_runtime_config
setup_args = ActionConditionedSetupArguments(
model="2B/robot/action-cond",
config_file="cosmos_predict2/_src/predict2/action/configs/action_conditioned/config.py",
checkpoints_dir=args.checkpoints_dir,
experiment=args.experiment,
num_frames=13,
dataset_path=args.dataset_path,
save_dir=args.save_dir,
output_dir=args.output_dir or args.save_dir,
num_samples=1,
data_split="full",
single_base_index=False,
)
checkpoints_dir = Path(args.checkpoints_dir)
last_checkpoint_file = checkpoints_dir / "latest_checkpoint.txt"
if not last_checkpoint_file.exists():
parent_file = checkpoints_dir.parent / "latest_checkpoint.txt"
if parent_file.exists():
checkpoints_dir = checkpoints_dir.parent
last_checkpoint_file = parent_file
if not last_checkpoint_file.exists():
raise FileNotFoundError(f"Could not find latest_checkpoint.txt in {args.checkpoints_dir} or its parent.")
with open(last_checkpoint_file) as f:
last_checkpoint = f.read().strip()
checkpoint_iter_dir = checkpoints_dir / last_checkpoint
from examples.action_conditioned import resolve_checkpoint_path
checkpoint_path = resolve_checkpoint_path(checkpoint_iter_dir)
checkpoint = MODEL_CHECKPOINTS[setup_args.model_key]
experiment = setup_args.experiment or checkpoint.experiment
cache_config = build_cache_runtime_config(setup_args)
video2world_cli = Video2WorldInference(
experiment_name=experiment,
ckpt_path=checkpoint_path,
s3_credential_path="",
context_parallel_size=setup_args.context_parallel_size,
config_file=setup_args.config_file,
experiment_opts=[],
cache_config=cache_config,
)
return video2world_cli, checkpoint_iter_dir.name
def build_dataset(args):
"""Build dataset with single_base_index=False to access all base_indices per episode."""
from groot_dreams.dataloader import MultiVideoActionDataset
dataset = MultiVideoActionDataset(
num_frames=13,
dataset_path=args.dataset_path,
data_split="full",
single_base_index=False,
restrict_len=None,
deterministic_uniform_sampling=False,
)
return dataset
def get_episode_plan(dataset, chunk_size):
"""
For each episode, collect data_ids whose actions cover the full episode.
Each data_id provides chunk_size actions. We step through the episode
in increments of chunk_size timesteps.
"""
episodes = {}
global_offset = 0
for ds_idx, ds in enumerate(dataset.datasets):
lerobot_ds = ds.lerobot_dataset
for local_idx, (traj_id, base_index) in enumerate(lerobot_ds.all_steps):
key = (ds_idx, int(traj_id))
if key not in episodes:
episodes[key] = []
episodes[key].append((global_offset + local_idx, int(base_index)))
global_offset += len(ds)
delta_indices = dataset.datasets[0].lerobot_dataset.modality_configs["video"].delta_indices
timestep_interval = delta_indices[1] - delta_indices[0]
stride_raw = chunk_size * timestep_interval
plan = []
for key, steps in episodes.items():
ds_idx, traj_id = key
steps_sorted = sorted(steps, key=lambda x: x[1])
if not steps_sorted:
continue
segment_indices = []
next_base = 0
for global_id, base_idx in steps_sorted:
if base_idx >= next_base:
segment_indices.append(global_id)
next_base = base_idx + stride_raw
if segment_indices:
traj_length = int(dataset.datasets[ds_idx].lerobot_dataset.trajectory_lengths[
np.where(dataset.datasets[ds_idx].lerobot_dataset.trajectory_ids == traj_id)[0][0]
])
plan.append({
"ds_idx": ds_idx,
"traj_id": int(traj_id),
"traj_length": traj_length,
"segment_data_ids": segment_indices,
})
return plan
def main():
args = parse_args()
from cosmos_oss.init import init_environment, cleanup_environment
init_environment()
torch.enable_grad(False)
print("Building model...")
video2world_cli, iter_name = build_model(args)
print("Building dataset...")
dataset = build_dataset(args)
print("Planning episodes...")
plan = get_episode_plan(dataset, args.chunk_size)
total_episodes = len(plan)
num_episodes = min(args.num_episodes, total_episodes)
print(f"Total episodes: {total_episodes}, testing: {num_episodes}")
save_root = Path(args.save_dir) / iter_name
save_root.mkdir(parents=True, exist_ok=True)
all_psnr, all_ssim, all_lpips = [], [], []
for ep_idx in range(num_episodes):
ep_info = plan[ep_idx]
traj_id = ep_info["traj_id"]
ep_save_dir = save_root / f"episode_{traj_id:06d}"
if (ep_save_dir / "full_pred.mp4").exists():
print(f"[{ep_idx}] episode_{traj_id:06d} already exists, skipping.")
continue
num_chunks = len(ep_info["segment_data_ids"])
print(f"[{ep_idx}] traj_id={traj_id}, traj_length={ep_info['traj_length']}, "
f"chunks={num_chunks}")
if num_chunks == 0:
print(" No chunks, skipping.")
continue
ep_save_dir.mkdir(parents=True, exist_ok=True)
# Get first frame from first segment (GT, properly resized by dataset pipeline)
first_sample = dataset[ep_info["segment_data_ids"][0]]
img_array = first_sample["video"].transpose(0, 1)[:1] # (1, C, H, W) uint8
# Collect GT video frames and actions from all segments
gt_frames = []
chunk_videos = []
first_round = True
for chunk_idx, data_id in enumerate(ep_info["segment_data_ids"]):
sample = dataset[data_id]
# GT frames for this chunk
video_tensor = sample["video"] # (C, T, H, W)
gt_video_chunk = video_tensor.permute(1, 2, 3, 0).numpy() # (T, H, W, C)
gt_frames.append(gt_video_chunk)
# Actions for this chunk (already normalized by dataset pipeline)
actions = sample["action"][:args.chunk_size]
if isinstance(actions, torch.Tensor):
actions = actions.numpy()
if actions.shape[0] != args.chunk_size:
print(f" chunk {chunk_idx}: only {actions.shape[0]} actions (need {args.chunk_size}), stopping.")
break
lam_video = sample.get("lam_video", None)
current_lam_video = None
if lam_video is not None and len(lam_video) >= args.chunk_size * 2:
current_lam_video = lam_video[:args.chunk_size * 2]
# Prepare input frame
if not first_round:
img_tensor = torchvision.transforms.functional.to_tensor(img_array).unsqueeze(0) * 255.0
else:
img_tensor = img_array
first_round = False
num_video_frames = actions.shape[0] + 1
vid_input = torch.cat(
[img_tensor, torch.zeros_like(img_tensor).repeat(num_video_frames - 1, 1, 1, 1)], dim=0
)
vid_input = vid_input.to(torch.uint8)
vid_input = vid_input.unsqueeze(0).permute(0, 2, 1, 3, 4)
video = video2world_cli.generate_vid2world(
prompt="",
input_path=vid_input,
action=torch.from_numpy(actions).float()
if isinstance(actions, np.ndarray)
else actions,
guidance=0,
num_video_frames=num_video_frames,
num_latent_conditional_frames=1,
resolution="480,640",
seed=chunk_idx,
negative_prompt="The video captures a scene with low visual quality, blurring, jittering, or distortion.",
lam_video=current_lam_video,
)
video_normalized = (video - (-1)) / (1 - (-1))
video_clamped = (
(torch.clamp(video_normalized[0], 0, 1) * 255).to(torch.uint8).permute(1, 2, 3, 0).cpu().numpy()
)
# Use last predicted frame as next input (NO GT reset — pure autoregressive)
img_array = video_clamped[-1]
chunk_videos.append(video_clamped)
print(f" chunk {chunk_idx+1}/{num_chunks} done")
if not chunk_videos:
continue
# Concatenate: first chunk full, subsequent chunks drop conditioning frame
chunk_list = [chunk_videos[0]] + [
chunk_videos[i][:args.chunk_size] for i in range(1, len(chunk_videos))
]
concat_pred = np.concatenate(chunk_list, axis=0)
# GT: similarly concatenate
gt_list = [gt_frames[0]] + [
gt_frames[i][:args.chunk_size] for i in range(1, len(gt_frames))
]
concat_gt = np.concatenate(gt_list, axis=0)
min_len = min(len(concat_pred), len(concat_gt))
concat_pred = concat_pred[:min_len]
concat_gt = concat_gt[:min_len]
mediapy.write_video(str(ep_save_dir / "full_pred.mp4"), concat_pred, fps=args.save_fps)
mediapy.write_video(str(ep_save_dir / "full_gt.mp4"), concat_gt, fps=args.save_fps)
concat_merged = np.concatenate([concat_gt, concat_pred], axis=2)
mediapy.write_video(str(ep_save_dir / "full_merged.mp4"), concat_merged, fps=args.save_fps)
x_batch = torch.clamp(torch.from_numpy(concat_pred.copy()) / 255.0, 0, 1).permute(0, 3, 1, 2)
y_batch = torch.clamp(torch.from_numpy(concat_gt.copy()) / 255.0, 0, 1).permute(0, 3, 1, 2)
psnr_val = piq.psnr(x_batch, y_batch).mean().item()
ssim_val = piq.ssim(x_batch, y_batch).mean().item()
lpips_val = piq.LPIPS()(x_batch, y_batch).mean().item()
with open(ep_save_dir / "metrics.json", "w") as f:
json.dump({
"psnr": psnr_val, "ssim": ssim_val, "lpips": lpips_val,
"num_chunks": len(chunk_videos),
"total_frames_pred": len(concat_pred),
"total_frames_gt": ep_info["traj_length"],
"trajectory_id": traj_id,
"mode": "single_segment_full_rollout",
}, f, indent=2)
all_psnr.append(psnr_val)
all_ssim.append(ssim_val)
all_lpips.append(lpips_val)
print(f" -> {len(concat_pred)} frames, PSNR={psnr_val:.2f}, SSIM={ssim_val:.4f}, LPIPS={lpips_val:.4f}")
if all_psnr:
summary = {
"mean_psnr": sum(all_psnr) / len(all_psnr),
"mean_ssim": sum(all_ssim) / len(all_ssim),
"mean_lpips": sum(all_lpips) / len(all_lpips),
"num_episodes_processed": len(all_psnr),
"mode": "single_segment_full_rollout",
}
with open(save_root / "all_summary.json", "w") as f:
json.dump(summary, f, indent=2)
print(f"\n=== Summary ({len(all_psnr)} episodes) ===")
print(f"PSNR: {summary['mean_psnr']:.3f}")
print(f"SSIM: {summary['mean_ssim']:.4f}")
print(f"LPIPS: {summary['mean_lpips']:.4f}")
cleanup_environment()
if __name__ == "__main__":
main()
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