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Create app.py
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app.py
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import gradio as gr
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| 2 |
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import torch
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from diffusers import MusicLDMPipeline
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# make Space compatible with CPU duplicates
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if torch.cuda.is_available():
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device = "cuda"
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torch_dtype = torch.float16
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else:
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device = "cpu"
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torch_dtype = torch.float32
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# load the diffusers pipeline
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pipe = MusicLDMPipeline.from_pretrained("cvssp/musicldm", torch_dtype=torch_dtype).to(device)
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# set the generator for reproducibility
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generator = torch.Generator(device)
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def text2audio(text, negative_prompt, duration, guidance_scale, random_seed, n_candidates):
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if text is None:
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raise gr.Error("Please provide a text input.")
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waveforms = pipe(
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text,
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audio_length_in_s=duration,
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guidance_scale=guidance_scale,
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num_inference_steps=200,
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negative_prompt=negative_prompt,
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num_waveforms_per_prompt=n_candidates if n_candidates else 1,
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generator=generator.manual_seed(int(random_seed)),
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)["audios"]
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return gr.make_waveform((16000, waveforms[0]), bg_image="bg.png")
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iface = gr.Blocks()
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with iface:
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gr.HTML(
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"""
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<div style="text-align: center; max-width: 700px; margin: 0 auto;">
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<div
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style="
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display: inline-flex; align-items: center; gap: 0.8rem; font-size: 1.75rem;
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"
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>
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<h1 style="font-weight: 900; margin-bottom: 7px; line-height: normal;">
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MusicLDM: Enhancing Novelty in Text-to-Music Generation Using Beat-Synchronous Mixup Strategies
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</h1>
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</div> <p style="margin-bottom: 10px; font-size: 94%">
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<a href="https://arxiv.org/abs/2308.01546">[Paper]</a> <a href="https://musicldm.github.io/">[Project
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page]</a> <a href="https://huggingface.co/docs/diffusers/main/en/api/pipelines/musicldm">[🧨
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Diffusers]</a>
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</p>
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</div>
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"""
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)
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gr.HTML("""This is the demo for MusicLDM, powered by 🧨 Diffusers. Demo uses the base checkpoint <a
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href="https://huggingface.co/ircam-reach/musicldm"> ircam-reach/musicldm </a>. For faster inference without waiting in
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queue, you may want to duplicate the space and upgrade to a GPU in the settings.""")
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gr.DuplicateButton()
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with gr.Group():
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textbox = gr.Textbox(
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value="Western music, chill out, folk instrument R & B beat",
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max_lines=1,
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label="Input text",
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info="Your text is important for the audio quality. Please ensure it is descriptive by using more adjectives.",
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elem_id="prompt-in",
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)
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negative_textbox = gr.Textbox(
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value="low quality, average quality",
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max_lines=1,
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label="Negative prompt",
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info="Enter a negative prompt not to guide the audio generation. Selecting appropriate negative prompts can improve the audio quality significantly.",
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elem_id="prompt-in",
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)
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with gr.Accordion("Click to modify detailed configurations", open=False):
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seed = gr.Number(
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value=42,
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label="Seed",
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info="Change this value (any integer number) will lead to a different generation result.",
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)
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duration = gr.Slider(5, 15, value=10, step=2.5, label="Duration (seconds)")
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guidance_scale = gr.Slider(
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0,
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7,
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value=3.5,
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step=0.5,
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label="Guidance scale",
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info="Larger => better quality and relevancy to text; Smaller => better diversity",
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)
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n_candidates = gr.Slider(
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1,
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5,
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value=3,
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step=1,
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label="Number waveforms to generate",
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info="Automatic quality control. This number control the number of candidates (e.g., generate three audios and choose the best to show you). A larger value usually lead to better quality with heavier computation",
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)
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outputs = gr.Video(label="Output", elem_id="output-video")
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btn = gr.Button("Submit")
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btn.click(
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text2audio,
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inputs=[textbox, negative_textbox, duration, guidance_scale, seed, n_candidates],
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outputs=[outputs],
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)
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gr.HTML(
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"""
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<div class="footer" style="text-align: center">
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<p>Share your generations with the community by clicking the share icon at the top right the generated audio!</p>
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<p>Follow the latest updates of MusicLDM on our<a href="https://musicldm.github.io/"
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style="text-decoration: underline;" target="_blank"> project page </a> </p>
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<p>Model by <a
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href="https://www.knutchen.com" style="text-decoration: underline;" target="_blank">Ke Chen</a>. Code and demo by 🤗 Hugging Face.</p>
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</div>
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"""
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)
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gr.Examples(
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[
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["Light rhythm techno", "low quality, average quality", 10, 3.5, 42, 3],
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["Futuristic drum and bass", "low quality, average quality", 10, 3.5, 42, 3],
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["Royal Film Music Orchestra", "low quality, average quality", 10, 3.5, 42, 3],
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["Elegant and gentle tunes of string quartet + harp", "low quality, average quality", 10, 3.5, 42, 3],
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["A fantastic piece of music with the deep sound of overlapping pianos", "low quality, average quality", 10, 3.5, 42, 3],
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["Gentle live acoustic guitar", "low quality, average quality", 10, 3.5, 42, 3],
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["Lyrical ballad played by saxophone", "low quality, average quality", 10, 3.5, 42, 3],
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],
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fn=text2audio,
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inputs=[textbox, negative_textbox, duration, guidance_scale, seed, n_candidates],
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outputs=[outputs],
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cache_examples=True,
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)
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gr.HTML(
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"""
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<div class="acknowledgements"> <p>Essential Tricks for Enhancing the Quality of Your Generated
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Audio</p>
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<p>1. Try using more adjectives to describe your sound. For example: "Techno music with high melodic
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riffs and euphoric melody" is better than "Techno".</p>
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<p>2. Try using different random seeds, which can significantly affect the quality of the generated
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output.</p>
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<p>3. It's better to use general terms like 'techno' or 'jazz' instead of specific names for genres,
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artists or styles that the model may not be familiar with.</p>
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<p>4. Using a negative prompt to not guide the diffusion process can improve the
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audio quality significantly. Try using negative prompts like 'low quality'.</p>
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</div>
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"""
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)
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with gr.Accordion("Additional information", open=False):
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gr.HTML(
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"""
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<div class="acknowledgments">
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<p> We build the model with data from the <a href="https://audiostock.net//">Audiostock</a>,
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dataset. The model is licensed as CC-BY-NC-4.0.
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</p>
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</div>
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"""
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)
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iface.queue(max_size=20).launch()
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