| import gradio as gr
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| import numpy as np
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| from audioldm import text_to_audio, build_model
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| model_id = "haoheliu/AudioLDM-S-Full"
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| audioldm = None
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| current_model_name = None
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| def text2audio(text, duration, guidance_scale, random_seed, n_candidates, model_name):
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| global audioldm, current_model_name
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| if audioldm is None or model_name != current_model_name:
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| audioldm=build_model(model_name=model_name)
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| current_model_name = model_name
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| waveform = text_to_audio(
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| latent_diffusion=audioldm,
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| text=text,
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| seed=random_seed,
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| duration=duration,
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| guidance_scale=guidance_scale,
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| n_candidate_gen_per_text=int(n_candidates),
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| )
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| waveform = [
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| gr.make_waveform((16000, wave[0]), bg_image="bg.png") for wave in waveform
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| ]
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| if len(waveform) == 1:
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| waveform = waveform[0]
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| return waveform
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| css = """
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| a {
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| color: inherit;
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| text-decoration: underline;
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| }
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| .gradio-container {
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| font-family: 'IBM Plex Sans', sans-serif;
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| }
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| .gr-button {
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| color: white;
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| border-color: #000000;
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| background: #000000;
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| }
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| input[type='range'] {
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| accent-color: #000000;
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| }
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| .dark input[type='range'] {
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| accent-color: #dfdfdf;
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| }
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| .container {
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| max-width: 730px;
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| margin: auto;
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| padding-top: 1.5rem;
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| }
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| #gallery {
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| min-height: 22rem;
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| margin-bottom: 15px;
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| margin-left: auto;
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| margin-right: auto;
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| border-bottom-right-radius: .5rem !important;
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| border-bottom-left-radius: .5rem !important;
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| }
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| #gallery>div>.h-full {
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| min-height: 20rem;
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| }
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| .details:hover {
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| text-decoration: underline;
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| }
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| .gr-button {
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| white-space: nowrap;
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| }
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| .gr-button:focus {
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| border-color: rgb(147 197 253 / var(--tw-border-opacity));
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| outline: none;
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| box-shadow: var(--tw-ring-offset-shadow), var(--tw-ring-shadow), var(--tw-shadow, 0 0 #0000);
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| --tw-border-opacity: 1;
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| --tw-ring-offset-shadow: var(--tw-ring-inset) 0 0 0 var(--tw-ring-offset-width) var(--tw-ring-offset-color);
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| --tw-ring-shadow: var(--tw-ring-inset) 0 0 0 calc(3px var(--tw-ring-offset-width)) var(--tw-ring-color);
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| --tw-ring-color: rgb(191 219 254 / var(--tw-ring-opacity));
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| --tw-ring-opacity: .5;
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| }
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| #advanced-btn {
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| font-size: .7rem !important;
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| line-height: 19px;
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| margin-top: 12px;
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| margin-bottom: 12px;
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| padding: 2px 8px;
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| border-radius: 14px !important;
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| }
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| #advanced-options {
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| margin-bottom: 20px;
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| }
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| .footer {
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| margin-bottom: 45px;
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| margin-top: 35px;
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| text-align: center;
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| border-bottom: 1px solid #e5e5e5;
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| }
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| .footer>p {
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| font-size: .8rem;
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| display: inline-block;
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| padding: 0 10px;
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| transform: translateY(10px);
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| background: white;
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| }
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| .dark .footer {
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| border-color: #303030;
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| }
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| .dark .footer>p {
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| background: #0b0f19;
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| }
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| .acknowledgments h4{
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| margin: 1.25em 0 .25em 0;
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| font-weight: bold;
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| font-size: 115%;
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| }
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| #container-advanced-btns{
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| display: flex;
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| flex-wrap: wrap;
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| justify-content: space-between;
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| align-items: center;
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| }
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| .animate-spin {
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| animation: spin 1s linear infinite;
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| }
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| @keyframes spin {
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| from {
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| transform: rotate(0deg);
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| }
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| to {
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| transform: rotate(360deg);
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| }
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| }
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| #share-btn-container {
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| display: flex; padding-left: 0.5rem !important; padding-right: 0.5rem !important; background-color: #000000; justify-content: center; align-items: center; border-radius: 9999px !important; width: 13rem;
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| margin-top: 10px;
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| margin-left: auto;
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| }
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| #share-btn {
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| all: initial; color: #ffffff;font-weight: 600; cursor:pointer; font-family: 'IBM Plex Sans', sans-serif; margin-left: 0.5rem !important; padding-top: 0.25rem !important; padding-bottom: 0.25rem !important;right:0;
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| }
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| #share-btn * {
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| all: unset;
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| }
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| #share-btn-container div:nth-child(-n+2){
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| width: auto !important;
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| min-height: 0px !important;
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| }
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| #share-btn-container .wrap {
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| display: none !important;
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| }
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| .gr-form{
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| flex: 1 1 50%; border-top-right-radius: 0; border-bottom-right-radius: 0;
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| }
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| #prompt-container{
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| gap: 0;
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| }
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| #generated_id{
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| min-height: 700px
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| }
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| #setting_id{
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| margin-bottom: 12px;
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| text-align: center;
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| font-weight: 900;
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| }
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| """
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| iface = gr.Blocks(css=css)
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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;
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| align-items: center;
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| gap: 0.8rem;
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| 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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| AudioLDM: Text-to-Audio Generation with Latent Diffusion Models
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| </h1>
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| </div>
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| <p style="margin-bottom: 10px; font-size: 94%">
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| <a href="https://arxiv.org/abs/2301.12503">[Paper]</a> <a href="https://audioldm.github.io/">[Project page]</a>
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| </p>
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| </div>
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| """
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| )
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| with gr.Group():
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| with gr.Box():
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| textbox = gr.Textbox(
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| value="A hammer is hitting a wooden surface",
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| max_lines=1,
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| label="Input your text here. Please ensure it is descriptive and of moderate length.",
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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="Change this value (any integer number) will lead to a different generation result.",
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| )
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| duration = gr.Slider(
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| 2.5, 10, value=5, step=2.5, label="Duration (seconds)"
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| )
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| guidance_scale = gr.Slider(
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| 0,
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| 5,
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| value=2.5,
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| step=0.5,
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| label="Guidance scale (Large => better quality and relavancy to text; Small => 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="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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| model_name = gr.Dropdown(
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| ["audioldm-s-full", "audioldm-l-full", "audioldm-s-full-v2","audioldm-m-text-ft", "audioldm-s-text-ft", "audioldm-m-full"], value="audioldm-m-full", label="Choose the model to use. audioldm-m-text-ft and audioldm-s-text-ft are recommanded. -s- means small, -m- means medium and -l- means large",
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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").style(full_width=True)
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| btn.click(
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| text2audio,
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| inputs=[textbox, duration, guidance_scale, seed, n_candidates, model_name],
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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; max-width: 700px; margin: 0 auto;">
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| <p>Follow the latest update of AudioLDM on our<a href="https://github.com/haoheliu/AudioLDM" style="text-decoration: underline;" target="_blank"> Github repo</a>
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| </p>
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| <br>
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| <p>Model by <a href="https://twitter.com/LiuHaohe" style="text-decoration: underline;" target="_blank">Haohe Liu</a></p>
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| <br>
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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 <a href="http://research.google.com/audioset/">AudioSet</a>, <a href="https://freesound.org/">Freesound</a> and <a href="https://sound-effects.bbcrewind.co.uk/">BBC Sound Effect library</a>. We share this demo based on the <a href="https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/375954/Research.pdf">UK copyright exception</a> of data for academic research. </p>
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| </div>
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| """
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| )
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| iface.queue(concurrency_count=3)
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| iface.launch(debug=True, share=False)
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