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adjust licenses and naming
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11 changed files with 7 additions and 25 deletions
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@ -154,22 +154,22 @@ pip install intel_extension_for_pytorch -f https://software.intel.com/ipex-whl-s
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To sample from the _SD2.1-v_ model with TorchScript+IPEX optimizations, run the following. Remember to specify desired number of instances you want to run the program on ([more](https://github.com/intel/intel-extension-for-pytorch/blob/master/intel_extension_for_pytorch/cpu/launch.py#L48)).
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```
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/768model.ckpt/> --config configs/stable-diffusion/ipex/v2-inference-v-fp32.yaml --H 768 --W 768 --precision full --device cpu --torchscript --ipex
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/768model.ckpt/> --config configs/stable-diffusion/intel/v2-inference-v-fp32.yaml --H 768 --W 768 --precision full --device cpu --torchscript --ipex
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```
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To sample from the base model with IPEX optimizations, use
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```
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/model.ckpt/> --config configs/stable-diffusion/ipex/v2-inference-fp32.yaml --n_samples 1 --n_iter 4 --precision full --device cpu --torchscript --ipex
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/model.ckpt/> --config configs/stable-diffusion/intel/v2-inference-fp32.yaml --n_samples 1 --n_iter 4 --precision full --device cpu --torchscript --ipex
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```
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If you're using a CPU that supports `bfloat16`, consider sample from the model with bfloat16 enabled for a performance boost, like so
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```bash
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# SD2.1-v
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/768model.ckpt/> --config configs/stable-diffusion/ipex/v2-inference-v-bf16.yaml --H 768 --W 768 --precision full --device cpu --torchscript --ipex --bf16
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/768model.ckpt/> --config configs/stable-diffusion/intel/v2-inference-v-bf16.yaml --H 768 --W 768 --precision full --device cpu --torchscript --ipex --bf16
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# SD2.1-base
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/model.ckpt/> --config configs/stable-diffusion/ipex/v2-inference-bf16.yaml --precision full --device cpu --torchscript --ipex --bf16
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MALLOC_CONF=oversize_threshold:1,background_thread:true,metadata_thp:auto,dirty_decay_ms:9000000000,muzzy_decay_ms:9000000000 python -m intel_extension_for_pytorch.cpu.launch --ninstance <number of an instance> --enable_jemalloc scripts/txt2img.py --prompt \"a corgi is playing guitar, oil on canvas\" --ckpt <path/to/model.ckpt/> --config configs/stable-diffusion/intel/v2-inference-bf16.yaml --precision full --device cpu --torchscript --ipex --bf16
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```
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### Image Modification with Stable Diffusion
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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"""SAMPLING ONLY."""
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import torch
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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"""
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wild mixture of
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https://github.com/lucidrains/denoising-diffusion-pytorch/blob/7706bdfc6f527f58d33f84b7b522e61e6e3164b3/denoising_diffusion_pytorch/denoising_diffusion_pytorch.py
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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"""SAMPLING ONLY."""
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import torch
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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"""SAMPLING ONLY."""
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import torch
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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from abc import abstractmethod
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import math
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@ -1,6 +1,3 @@
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# Copyright (C) 2022 Intel Corporation
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# SPDX-License-Identifier: MIT
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import argparse, os
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import cv2
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import torch
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@ -270,10 +267,10 @@ def main(opt):
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if opt.bf16 and not opt.torchscript and not opt.ipex:
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raise ValueError('Bfloat16 is supported only for torchscript+ipex')
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if opt.bf16 and unet.dtype != torch.bfloat16:
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raise ValueError("Use configs/stable-diffusion/ipex/ configs with bf16 enabled if " +
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raise ValueError("Use configs/stable-diffusion/intel/ configs with bf16 enabled if " +
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"you'd like to use bfloat16 with CPU.")
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if unet.dtype == torch.float16 and device == torch.device("cpu"):
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raise ValueError("Use configs/stable-diffusion/ipex/ configs for your model if you'd like to run it on CPU.")
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raise ValueError("Use configs/stable-diffusion/intel/ configs for your model if you'd like to run it on CPU.")
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if opt.ipex:
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import intel_extension_for_pytorch as ipex
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# get UNET scripted
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if unet.use_checkpoint:
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raise ValueError("Gradient checkpoint won't work with tracing. " +
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"Use configs/stable-diffusion/ipex/ configs for your model or disable checkpoint in your config.")
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"Use configs/stable-diffusion/intel/ configs for your model or disable checkpoint in your config.")
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img_in = torch.ones(2, 4, 96, 96, dtype=torch.float32)
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t_in = torch.ones(2, dtype=torch.int64)
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