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app.py
CHANGED
@@ -19,20 +19,101 @@ def output_generate(image):
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generated = model.generate(im, seq_len=20)
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return open_clip.decode(generated[0].detach()).split("<end_of_text>")[0].replace("<start_of_text>", "")
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paths = sorted(pathlib.Path("images").glob("*.jpg"))
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iface.launch()
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generated = model.generate(im, seq_len=20)
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return open_clip.decode(generated[0].detach()).split("<end_of_text>")[0].replace("<start_of_text>", "")
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def inference_caption(image, decoding_method="Beam search", rep_penalty=1.2, top_p=0.5, min_seq_len=5, seq_len=20):
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im = transform(image).unsqueeze(0).to(device)
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generation_type = "beam_search" if decoding_method == "Beam search" else "top_p"
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with torch.no_grad(), torch.cuda.amp.autocast():
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generated = model.generate(
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im,
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generation_type=generation_type,
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top_p=top_p,
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min_seq_len=min_seq_len,
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seq_len=seq_len,
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repetition_penalty=rep_penalty
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)
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return open_clip.decode(generated[0].detach()).split("<end_of_text>")[0].replace("<start_of_text>", "")
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paths = sorted(pathlib.Path("images").glob("*.jpg"))
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with gr.Blocks(
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css="""
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.message.svelte-w6rprc.svelte-w6rprc.svelte-w6rprc {font-size: 20px; margin-top: 20px}
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#component-21 > div.wrap.svelte-w6rprc {height: 600px;}
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"""
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) as iface:
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state = gr.State([])
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# gr.Markdown(title)
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# gr.Markdown(description)
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# gr.Markdown(article)
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with gr.Row():
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with gr.Column(scale=1):
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image_input = gr.Image(type="pil")
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# with gr.Row():
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sampling = gr.Radio(
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choices=["Beam search", "Nucleus sampling"],
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value="Beam search",
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label="Text Decoding Method",
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interactive=True,
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)
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rep_penalty = gr.Slider(
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minimum=1.0,
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maximum=5.0,
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value=1.5,
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step=0.5,
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interactive=True,
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label="Repeat Penalty (larger value prevents repetition)",
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)
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top_p = gr.Slider(
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minimum=0.0,
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maximum=1.0,
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value=1.0,
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step=0.1,
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interactive=True,
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label="Top p (used with nucleus sampling)",
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)
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min_seq_len = gr.Number(
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value=5, label="Minimum Sequence Length", precision=0, interactive=True
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)
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seq_len = gr.Number(
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value=20, label="Maximum Sequence Length", precision=0, interactive=True
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)
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with gr.Column(scale=1.8):
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with gr.Column():
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caption_output = gr.Textbox(lines=1, label="Caption Output")
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caption_button = gr.Button(
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value="Caption it!", interactive=True, variant="primary"
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)
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caption_button.click(
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inference_caption,
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[
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image_input,
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sampling,
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rep_penalty,
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top_p,
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min_seq_len,
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seq_len
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],
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[caption_output],
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)
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# iface = gr.Interface(
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# fn=output_generate,
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# inputs=gr.Image(label="Input image", type="pil"),
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# outputs=gr.Text(label="Caption output"),
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# title="CoCa: Contrastive Captioners",
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# description=(
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# """<br> An open source implementation of <strong>CoCa: Contrastive Captioners are Image-Text Foundation Models</strong> <a href=https://arxiv.org/abs/2205.01917>https://arxiv.org/abs/2205.01917.</a>
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# <br> Built using <a href=https://github.com/mlfoundations/open_clip>open_clip</a> with an effort from <a href=https://laion.ai/>LAION</a>.
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# <br> For faster inference without waiting in queue, you may duplicate the space and upgrade to GPU in settings.<a href="https://huggingface.co/spaces/laion/CoCa?duplicate=true"> <img style="margin-top: 0em; margin-bottom: 0em" src="https://bit.ly/3gLdBN6" alt="Duplicate Space"></a>"""
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# ),
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# article="""""",
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# examples=[path.as_posix() for path in paths],
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# )
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iface.launch()
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