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import torch |
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from PIL import Image |
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import librosa |
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from diffsynth import VideoData, save_video_with_audio, load_state_dict |
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from diffsynth.pipelines.wan_video_new import WanVideoPipeline, ModelConfig |
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pipe = WanVideoPipeline.from_pretrained( |
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torch_dtype=torch.bfloat16, |
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device="cuda", |
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model_configs=[ |
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ModelConfig(model_id="Wan-AI/Wan2.2-S2V-14B", origin_file_pattern="diffusion_pytorch_model*.safetensors"), |
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ModelConfig(model_id="Wan-AI/Wan2.2-S2V-14B", origin_file_pattern="wav2vec2-large-xlsr-53-english/model.safetensors"), |
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ModelConfig(model_id="Wan-AI/Wan2.2-S2V-14B", origin_file_pattern="models_t5_umt5-xxl-enc-bf16.pth"), |
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ModelConfig(model_id="Wan-AI/Wan2.2-S2V-14B", origin_file_pattern="Wan2.1_VAE.pth"), |
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], |
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audio_processor_config=ModelConfig(model_id="Wan-AI/Wan2.2-S2V-14B", origin_file_pattern="wav2vec2-large-xlsr-53-english/"), |
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) |
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state_dict = load_state_dict("models/train/Wan2.2-S2V-14B_full/epoch-0.safetensors") |
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pipe.dit.load_state_dict(state_dict, strict=False) |
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pipe.enable_vram_management() |
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num_frames = 81 |
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height = 448 |
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width = 832 |
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prompt = "a person is singing" |
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negative_prompt = "画面模糊,最差质量,画面模糊,细节模糊不清,情绪激动剧烈,手快速抖动,字幕,丑陋的,残缺的,多余的手指,画得不好的手部,画得不好的脸部,畸形的,毁容的,形态畸形的肢体,手指融合,静止不动的画面,杂乱的背景,三条腿,背景人很多,倒着走" |
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input_image = Image.open("data/example_video_dataset/wans2v/pose.png").convert("RGB").resize((width, height)) |
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audio_path = 'data/example_video_dataset/wans2v/sing.MP3' |
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input_audio, sample_rate = librosa.load(audio_path, sr=16000) |
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pose_video_path = 'data/example_video_dataset/wans2v/pose.mp4' |
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pose_video = VideoData(pose_video_path, height=height, width=width) |
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video = pipe( |
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prompt=prompt, |
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input_image=input_image, |
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negative_prompt=negative_prompt, |
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seed=0, |
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num_frames=num_frames, |
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height=height, |
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width=width, |
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audio_sample_rate=sample_rate, |
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input_audio=input_audio, |
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s2v_pose_video=pose_video, |
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num_inference_steps=40, |
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) |
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save_video_with_audio(video[1:], "video_pose_with_audio.mp4", audio_path, fps=16, quality=5) |
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