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Runtime error
leeway.zlw
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69c71b8
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Parent(s):
ca33a23
update
Browse files
app.py
CHANGED
@@ -12,7 +12,7 @@ is_shared_ui = True if "fudan-generative-ai/hallo" in os.environ['SPACE_ID'] els
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if(not is_shared_ui):
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hallo_dir = snapshot_download(repo_id="fudan-generative-ai/hallo", local_dir="pretrained_models")
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def run_inference(source_image, driving_audio, progress=gr.Progress(track_tqdm=True)):
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if is_shared_ui:
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raise gr.Error("This Space only works in duplicated instances")
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@@ -23,10 +23,10 @@ def run_inference(source_image, driving_audio, progress=gr.Progress(track_tqdm=T
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source_image=source_image,
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driving_audio=driving_audio,
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output=f'output-{unique_id}.mp4',
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pose_weight=
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face_weight=
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lip_weight=
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face_expand_ratio=
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checkpoint=None
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)
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@@ -91,17 +91,38 @@ with gr.Blocks(css=css) as demo:
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''', elem_id="warning-duplicate")
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gr.Markdown("# Demo for Hallo: Hierarchical Audio-Driven Visual Synthesis for Portrait Image Animation")
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gr.Markdown("Generate talking head avatars driven from audio. **5 seconds of audio takes >10 minutes to generate on an L4** - duplicate the space for private use or try for free on Google Colab")
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with gr.Row():
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with gr.Column():
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avatar_face = gr.Image(type="filepath", label="Face")
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driving_audio = gr.Audio(type="filepath", label="Driving audio")
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generate = gr.Button("Generate")
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with gr.Column():
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output_video = gr.Video(label="Your talking head")
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generate.click(
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fn=run_inference,
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inputs=[avatar_face, driving_audio],
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outputs=output_video
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)
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if(not is_shared_ui):
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hallo_dir = snapshot_download(repo_id="fudan-generative-ai/hallo", local_dir="pretrained_models")
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def run_inference(source_image, driving_audio, pose_weight, face_weight, lip_weight, face_expand_ratio, progress=gr.Progress(track_tqdm=True)):
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if is_shared_ui:
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raise gr.Error("This Space only works in duplicated instances")
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source_image=source_image,
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driving_audio=driving_audio,
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output=f'output-{unique_id}.mp4',
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pose_weight=pose_weight,
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face_weight=face_weight,
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lip_weight=lip_weight,
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face_expand_ratio=face_expand_ratio,
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checkpoint=None
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)
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''', elem_id="warning-duplicate")
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gr.Markdown("# Demo for Hallo: Hierarchical Audio-Driven Visual Synthesis for Portrait Image Animation")
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gr.Markdown("Generate talking head avatars driven from audio. **5 seconds of audio takes >10 minutes to generate on an L4** - duplicate the space for private use or try for free on Google Colab")
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gr.Markdown("""
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Hallo has a few simple requirements for input data:
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For the source image:
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1. It should be cropped into squares.
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2. The face should be the main focus, making up 50%-70% of the image.
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3. The face should be facing forward, with a rotation angle of less than 30° (no side profiles).
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For the driving audio:
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1. It must be in WAV format.
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2. It must be in English since our training datasets are only in this language.
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3. Ensure the vocals are clear; background music is acceptable.
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We have provided some [samples](https://huggingface.co/datasets/fudan-generative-ai/hallo_inference_samples) for your reference.
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""")
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with gr.Row():
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with gr.Column():
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avatar_face = gr.Image(type="filepath", label="Face")
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driving_audio = gr.Audio(type="filepath", label="Driving audio")
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pose_weight = gr.Number(label="pose weight", value=1.0),
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face_weight = gr.Number(label="face weight", value=1.0),
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lip_weight = gr.Number(label="lip weight", value=1.0),
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face_expand_ratio = gr.Number(label="face expand ratio", value=1.2),
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generate = gr.Button("Generate")
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with gr.Column():
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output_video = gr.Video(label="Your talking head")
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generate.click(
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fn=run_inference,
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inputs=[avatar_face, driving_audio, pose_weight, face_weight, lip_weight, face_expand_ratio],
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outputs=output_video
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)
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