Add files
Browse files- .gitmodules +3 -0
- StyleGAN-Human +1 -0
- app.py +138 -0
- requirements.txt +5 -0
.gitmodules
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[submodule "StyleGAN-Human"]
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path = StyleGAN-Human
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url = https://github.com/stylegan-human/StyleGAN-Human
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StyleGAN-Human
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Subproject commit d2514c145a451453804f60a12de8f13d40c9fe4f
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app.py
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#!/usr/bin/env python
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from __future__ import annotations
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import argparse
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import functools
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import os
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import pickle
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import sys
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import gradio as gr
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import numpy as np
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import torch
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import torch.nn as nn
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from huggingface_hub import hf_hub_download
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sys.path.insert(0, 'StyleGAN-Human')
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TITLE = 'StyleGAN-Human (Interpolation)'
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DESCRIPTION = 'This is a demo for https://github.com/stylegan-human/StyleGAN-Human.'
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ARTICLE = None
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TOKEN = os.environ['TOKEN']
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def parse_args() -> argparse.Namespace:
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parser = argparse.ArgumentParser()
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parser.add_argument('--device', type=str, default='cpu')
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parser.add_argument('--theme', type=str)
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parser.add_argument('--live', action='store_true')
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parser.add_argument('--share', action='store_true')
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parser.add_argument('--port', type=int)
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parser.add_argument('--disable-queue',
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dest='enable_queue',
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action='store_false')
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parser.add_argument('--allow-flagging', type=str, default='never')
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parser.add_argument('--allow-screenshot', action='store_true')
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return parser.parse_args()
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def load_model(file_name: str, device: torch.device) -> nn.Module:
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path = hf_hub_download('hysts/StyleGAN-Human',
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f'models/{file_name}',
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use_auth_token=TOKEN)
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with open(path, 'rb') as f:
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model = pickle.load(f)['G_ema']
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model.eval()
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model.to(device)
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with torch.inference_mode():
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z = torch.zeros((1, model.z_dim)).to(device)
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label = torch.zeros([1, model.c_dim], device=device)
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model(z, label, force_fp32=True)
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return model
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def generate_z(z_dim: int, seed: int, device: torch.device) -> torch.Tensor:
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return torch.from_numpy(np.random.RandomState(seed).randn(
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1, z_dim)).to(device).float()
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@torch.inference_mode()
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def generate_interpolated_images(
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seed0: int, psi0: float, seed1: int, psi1: float,
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num_intermediate: int, model: nn.Module,
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device: torch.device) -> tuple[list[np.ndarray], np.ndarray]:
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seed0 = int(np.clip(seed0, 0, np.iinfo(np.uint32).max))
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seed1 = int(np.clip(seed1, 0, np.iinfo(np.uint32).max))
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z0 = generate_z(model.z_dim, seed0, device)
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z1 = generate_z(model.z_dim, seed1, device)
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vec = z1 - z0
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dvec = vec / (num_intermediate + 1)
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zs = [z0 + dvec * i for i in range(num_intermediate + 2)]
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dpsi = (psi1 - psi0) / (num_intermediate + 1)
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psis = [psi0 + dpsi * i for i in range(num_intermediate + 2)]
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label = torch.zeros([1, model.c_dim], device=device)
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res = []
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for z, psi in zip(zs, psis):
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out = model(z, label, truncation_psi=psi, force_fp32=True)
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out = (out.permute(0, 2, 3, 1) * 127.5 + 128).clamp(0, 255).to(
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torch.uint8)
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out = out[0].cpu().numpy()
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res.append(out)
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concatenated = np.hstack(res)
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return res, concatenated
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def main():
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gr.close_all()
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args = parse_args()
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device = torch.device(args.device)
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model = load_model('stylegan_human_v2_1024.pkl', device)
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func = functools.partial(generate_interpolated_images,
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model=model,
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device=device)
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func = functools.update_wrapper(func, generate_interpolated_images)
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gr.Interface(
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func,
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[
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gr.inputs.Number(default=0, label='Seed 1'),
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gr.inputs.Slider(
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0, 2, step=0.05, default=0.7, label='Truncation psi 1'),
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gr.inputs.Number(default=1, label='Seed 2'),
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gr.inputs.Slider(
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0, 2, step=0.05, default=0.7, label='Truncation psi 2'),
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gr.inputs.Slider(0,
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21,
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step=1,
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default=7,
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label='Number of Intermediate Frames'),
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],
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[
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gr.outputs.Carousel(gr.outputs.Image(type='numpy'),
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label='Output Images'),
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gr.outputs.Image(type='numpy', label='Concatenated'),
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],
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title=TITLE,
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description=DESCRIPTION,
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article=ARTICLE,
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theme=args.theme,
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allow_screenshot=args.allow_screenshot,
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allow_flagging=args.allow_flagging,
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live=args.live,
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).launch(
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enable_queue=args.enable_queue,
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server_port=args.port,
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share=args.share,
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)
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if __name__ == '__main__':
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main()
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requirements.txt
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numpy==1.22.3
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Pillow==9.1.0
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scipy==1.8.0
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torch==1.11.0
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torchvision==0.12.0
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