Upload Wuli-art_Qwen-Image-2512-Turbo-LoRA_0.txt with huggingface_hub
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Wuli-art_Qwen-Image-2512-Turbo-LoRA_0.txt
CHANGED
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@@ -12,7 +12,7 @@ image = pipe(prompt).images[0]
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ERROR:
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Traceback (most recent call last):
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File "/tmp/Wuli-art_Qwen-Image-2512-Turbo-
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pipe = DiffusionPipeline.from_pretrained("Qwen/Qwen-Image-2512", dtype=torch.bfloat16, device_map="cuda")
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File "/tmp/.cache/uv/environments-v2/1854b94ccf1b5a38/lib/python3.13/site-packages/huggingface_hub/utils/_validators.py", line 114, in _inner_fn
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return fn(*args, **kwargs)
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@@ -41,4 +41,4 @@ Traceback (most recent call last):
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~~~~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
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File "/tmp/.cache/uv/environments-v2/1854b94ccf1b5a38/lib/python3.13/site-packages/diffusers/models/model_loading_utils.py", line 751, in _caching_allocator_warmup
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_ = torch.empty(warmup_elems, dtype=dtype, device=device, requires_grad=False)
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torch.OutOfMemoryError: CUDA out of memory. Tried to allocate 38.05 GiB. GPU 0 has a total capacity of 22.03 GiB of which 21.
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ERROR:
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Traceback (most recent call last):
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File "/tmp/Wuli-art_Qwen-Image-2512-Turbo-LoRA_0h6aQ3W.py", line 27, in <module>
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pipe = DiffusionPipeline.from_pretrained("Qwen/Qwen-Image-2512", dtype=torch.bfloat16, device_map="cuda")
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File "/tmp/.cache/uv/environments-v2/1854b94ccf1b5a38/lib/python3.13/site-packages/huggingface_hub/utils/_validators.py", line 114, in _inner_fn
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return fn(*args, **kwargs)
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~~~~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
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File "/tmp/.cache/uv/environments-v2/1854b94ccf1b5a38/lib/python3.13/site-packages/diffusers/models/model_loading_utils.py", line 751, in _caching_allocator_warmup
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_ = torch.empty(warmup_elems, dtype=dtype, device=device, requires_grad=False)
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torch.OutOfMemoryError: CUDA out of memory. Tried to allocate 38.05 GiB. GPU 0 has a total capacity of 22.03 GiB of which 21.84 GiB is free. Including non-PyTorch memory, this process has 186.00 MiB memory in use. Of the allocated memory 0 bytes is allocated by PyTorch, and 0 bytes is reserved by PyTorch but unallocated. If reserved but unallocated memory is large try setting PYTORCH_CUDA_ALLOC_CONF=expandable_segments:True to avoid fragmentation. See documentation for Memory Management (https://pytorch.org/docs/stable/notes/cuda.html#environment-variables)
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