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August 14, 2024 21:30
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The script shows how to run SD3 with `torch.compile()`
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| import torch | |
| torch.set_float32_matmul_precision("high") | |
| from diffusers import StableDiffusion3Pipeline | |
| import time | |
| id = "stabilityai/stable-diffusion-3-medium-diffusers" | |
| pipeline = StableDiffusion3Pipeline.from_pretrained( | |
| id, | |
| torch_dtype=torch.float16 | |
| ).to("cuda") | |
| pipeline.set_progress_bar_config(disable=True) | |
| torch._inductor.config.conv_1x1_as_mm = True | |
| torch._inductor.config.coordinate_descent_tuning = True | |
| torch._inductor.config.epilogue_fusion = False | |
| torch._inductor.config.coordinate_descent_check_all_directions = True | |
| pipeline.transformer.to(memory_format=torch.channels_last) | |
| pipeline.vae.to(memory_format=torch.channels_last) | |
| pipeline.transformer = torch.compile(pipeline.transformer, mode="max-autotune", fullgraph=True) | |
| pipeline.vae.decode = torch.compile(pipeline.vae.decode, mode="max-autotune", fullgraph=True) | |
| prompt = "a photo of a cat" | |
| for _ in range(3): | |
| _ = pipeline( | |
| prompt=prompt, | |
| num_inference_steps=50, | |
| guidance_scale=5.0, | |
| generator=torch.manual_seed(1), | |
| ) | |
| start = time.time() | |
| for _ in range(10): | |
| _ = pipeline( | |
| prompt=prompt, | |
| num_inference_steps=50, | |
| guidance_scale=5.0, | |
| generator=torch.manual_seed(1), | |
| ) | |
| end = time.time() | |
| avg_inference_time = (end - start) / 10 | |
| print(f"Average inference time: {avg_inference_time:.3f} seconds.") | |
| image = pipeline( | |
| prompt=prompt, | |
| num_inference_steps=50, | |
| guidance_scale=5.0, | |
| generator=torch.manual_seed(1), | |
| ).images[0] | |
| filename = "_".join(prompt.split(" ")) | |
| image.save(f"diffusers_{filename}.png") |
Author
You should use PyTorch 2.3
I solved this problem with pytorch2.3,thanks
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You should use PyTorch 2.3