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Running
on
Zero
Commit
β’
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Parent(s):
33a8da6
Video format (#21)
Browse files- Video format (7837089deafe5cc427a454025dae4d562cc3f531)
Co-authored-by: Fabrice TIERCELIN <Fabrice-TIERCELIN@users.noreply.huggingface.co>
app.py
CHANGED
@@ -31,6 +31,7 @@ def animate(
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fps_id: int = 6,
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noise_aug_strength: float = 0.1,
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decoding_t: int = 3,
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frame_format: str = "webp",
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version: str = "auto",
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output_folder: str = "outputs",
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@@ -44,18 +45,16 @@ def animate(
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frames = animate_on_gpu(
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image,
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seed,
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randomize_seed,
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motion_bucket_id,
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fps_id,
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noise_aug_strength,
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decoding_t,
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frame_format,
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version
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)
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os.makedirs(output_folder, exist_ok=True)
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base_count = len(glob(os.path.join(output_folder, "*.
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video_path = os.path.join(output_folder, f"{base_count:06d}.
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export_to_video(frames, video_path, fps=fps_id)
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@@ -65,12 +64,10 @@ def animate(
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def animate_on_gpu(
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image: Image,
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seed: Optional[int] = 42,
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randomize_seed: bool = True,
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motion_bucket_id: int = 127,
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fps_id: int = 6,
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noise_aug_strength: float = 0.1,
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decoding_t: int = 3,
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frame_format: str = "webp",
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version: str = "auto"
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):
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generator = torch.manual_seed(seed)
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@@ -128,7 +125,8 @@ with gr.Blocks() as demo:
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motion_bucket_id = gr.Slider(label="Motion bucket id", info="Controls how much motion to add/remove from the image", value=127, minimum=1, maximum=255)
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noise_aug_strength = gr.Slider(label="Noise strength", info="The noise to add", value=0.1, minimum=0, maximum=1, step=0.1)
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decoding_t = gr.Slider(label="Decoding", info="Number of frames decoded at a time; this eats more VRAM; reduce if necessary", value=3, minimum=1, maximum=5, step=1)
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-
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version = gr.Radio([["Auto", "auto"], ["ππ»ββοΈ SVD (trained on 14 f/s)", "svd"], ["ππ»ββοΈπ¨ SVD-XT (trained on 25 f/s)", "svdxt"]], label="Model", info="Trained model", value="auto", interactive=True)
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seed = gr.Slider(label="Seed", value=42, randomize=True, minimum=0, maximum=max_64_bit_int, step=1)
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randomize_seed = gr.Checkbox(label="Randomize seed", value=True)
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@@ -141,15 +139,15 @@ with gr.Blocks() as demo:
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gallery = gr.Gallery(label="Generated frames", visible=False)
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image.upload(fn=resize_image, inputs=image, outputs=image, queue=False)
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generate_btn.click(fn=animate, inputs=[image, seed, randomize_seed, motion_bucket_id, fps_id, noise_aug_strength, decoding_t, frame_format, version], outputs=[video, download_button, gallery, seed], api_name="video")
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gr.Examples(
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examples=[
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["Examples/Fire.webp", 42, True, 127, 25, 0.1, 3, "png", "auto"],
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["Examples/Water.png", 42, True, 127, 25, 0.1, 3, "png", "auto"],
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["Examples/Town.jpeg", 42, True, 127, 25, 0.1, 3, "png", "auto"]
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],
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inputs=[image, seed, randomize_seed, motion_bucket_id, fps_id, noise_aug_strength, decoding_t, frame_format, version],
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outputs=[video, download_button, gallery, seed],
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fn=animate,
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run_on_click=True,
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fps_id: int = 6,
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noise_aug_strength: float = 0.1,
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decoding_t: int = 3,
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+
video_format: str = "mp4",
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frame_format: str = "webp",
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version: str = "auto",
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output_folder: str = "outputs",
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frames = animate_on_gpu(
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image,
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seed,
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motion_bucket_id,
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fps_id,
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noise_aug_strength,
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decoding_t,
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version
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)
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os.makedirs(output_folder, exist_ok=True)
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+
base_count = len(glob(os.path.join(output_folder, "*." + video_format)))
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video_path = os.path.join(output_folder, f"{base_count:06d}." + video_format)
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export_to_video(frames, video_path, fps=fps_id)
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def animate_on_gpu(
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image: Image,
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seed: Optional[int] = 42,
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motion_bucket_id: int = 127,
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fps_id: int = 6,
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noise_aug_strength: float = 0.1,
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decoding_t: int = 3,
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version: str = "auto"
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):
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generator = torch.manual_seed(seed)
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motion_bucket_id = gr.Slider(label="Motion bucket id", info="Controls how much motion to add/remove from the image", value=127, minimum=1, maximum=255)
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noise_aug_strength = gr.Slider(label="Noise strength", info="The noise to add", value=0.1, minimum=0, maximum=1, step=0.1)
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decoding_t = gr.Slider(label="Decoding", info="Number of frames decoded at a time; this eats more VRAM; reduce if necessary", value=3, minimum=1, maximum=5, step=1)
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video_format = gr.Radio([["*.mp4", "mp4"], ["*.avi", "avi"]], label="Video format for result", info="File extention", value="mp4", interactive=True)
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frame_format = gr.Radio([["*.png", "png"], ["*.webp", "webp"], ["*.jpeg", "jpeg"], ["*.gif", "gif"], ["*.bmp", "bmp"]], label="Image format for frames", info="File extention", value="webp", interactive=True)
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version = gr.Radio([["Auto", "auto"], ["ππ»ββοΈ SVD (trained on 14 f/s)", "svd"], ["ππ»ββοΈπ¨ SVD-XT (trained on 25 f/s)", "svdxt"]], label="Model", info="Trained model", value="auto", interactive=True)
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seed = gr.Slider(label="Seed", value=42, randomize=True, minimum=0, maximum=max_64_bit_int, step=1)
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randomize_seed = gr.Checkbox(label="Randomize seed", value=True)
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gallery = gr.Gallery(label="Generated frames", visible=False)
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image.upload(fn=resize_image, inputs=image, outputs=image, queue=False)
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generate_btn.click(fn=animate, inputs=[image, seed, randomize_seed, motion_bucket_id, fps_id, noise_aug_strength, decoding_t, video_format, frame_format, version], outputs=[video, download_button, gallery, seed], api_name="video")
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gr.Examples(
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examples=[
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+
["Examples/Fire.webp", 42, True, 127, 25, 0.1, 3, "mp4", "png", "auto"],
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+
["Examples/Water.png", 42, True, 127, 25, 0.1, 3, "mp4", "png", "auto"],
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["Examples/Town.jpeg", 42, True, 127, 25, 0.1, 3, "mp4", "png", "auto"]
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],
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inputs=[image, seed, randomize_seed, motion_bucket_id, fps_id, noise_aug_strength, decoding_t, video_format, frame_format, version],
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outputs=[video, download_button, gallery, seed],
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fn=animate,
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run_on_click=True,
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