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import io |
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from pathlib import Path |
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import torch |
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def save_tensor(tensor, name): |
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f = io.BytesIO() |
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torch.save(tensor, f, _use_new_zipfile_serialization=True) |
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with open(name, "wb") as out_f: |
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out_f.write(f.getbuffer()) |
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def process_forward_dump(dump_path: Path, output_path: Path): |
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output_path.mkdir(exist_ok=True, parents=True) |
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data = torch.load(dump_path) |
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arg_names = [ |
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"bg", |
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"means3D", |
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"colors_precomp", |
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"opacities", |
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"scales", |
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"rotations", |
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"scale_modifier", |
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"cov3Ds_precomp", |
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"viewmatrix", |
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"projmatrix", |
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"tanfovx", |
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"tanfovy", |
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"image_height", |
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"image_width", |
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"sh", |
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"sh_degree", |
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"campos", |
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"prefiltered", |
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"debug", |
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] |
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for tensor, name in zip(data, arg_names): |
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save_tensor(tensor, str(output_path / name) + ".pt") |
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def process_backward_dump(dump_path: Path, output_path: Path): |
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output_path.mkdir(exist_ok=True, parents=True) |
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data = torch.load(dump_path) |
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arg_names = [ |
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"bg", |
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"means3D", |
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"radii", |
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"colors_precomp", |
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"scales", |
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"rotations", |
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"scale_modifier", |
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"cov3Ds_precomp", |
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"viewmatrix", |
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"projmatrix", |
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"tanfovx", |
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"tanfovy", |
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"grad_out_color", |
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"grad_depth", |
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"grad_out_alpha", |
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"sh", |
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"sh_degree", |
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"campos", |
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"geomBuffer", |
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"num_rendered", |
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"binningBuffer", |
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"imgBuffer", |
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"alpha", |
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"debug" |
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] |
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for tensor, name in zip(data, arg_names): |
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save_tensor(tensor, str(output_path / name) + ".pt") |
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if __name__ == '__main__': |
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global_path = Path("/home/vy/projects/gaussian-rasterizer/test_data") |
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process_forward_dump(global_path / "snapshot_fw.dump", global_path / "forward_tensors") |
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process_backward_dump(global_path / "snapshot_bw.dump", global_path / "backward_tensors") |
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