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  1. .gitattributes +1 -0
  2. app.py +59 -0
  3. merlion.png +3 -0
  4. requirements.txt +3 -0
.gitattributes CHANGED
@@ -32,3 +32,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
 
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
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+ merlion.png filter=lfs diff=lfs merge=lfs -text
app.py ADDED
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+ import os
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+ import torch
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+ from PIL import Image
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+ import numpy as np
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+ from PIL import Image
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+ from lavis.models import load_model_and_preprocess
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+ import gradio as gr
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+
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+ device = torch.device("cuda") if torch.cuda.is_available() else "cpu"
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+
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+
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+ model, vis_processors, _ = load_model_and_preprocess(
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+ name="blip2_opt", model_type="pretrain_opt2.7b", is_eval=True, device=device
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+ )
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+
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+
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+ def answer_question(image, prompt):
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+ image = vis_processors["eval"](image).unsqueeze(0).to(device)
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+ response = model.generate({"image": image, "prompt": f"Question: {prompt} Answer:"})
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+ response = '\n'.join(response)
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+ return response
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+
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+ def generate_caption(image, caption_type):
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+ image = vis_processors["eval"](image).unsqueeze(0).to(device)
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+
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+ if caption_type == "Beam Search":
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+ caption = model.generate({"image": image})
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+ else:
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+ caption = model.generate({"image": image}, use_nucleus_sampling=True, num_captions=3)
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+
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+ caption = '\n'.join(caption)
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+
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+ return caption
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+
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+
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+ with gr.Blocks() as demo:
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+
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+ gr.Markdown("## BLIP-2 Demo")
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+ gr.Markdown("Using `OPT2.7B` - [Github](https://github.com/salesforce/LAVIS/tree/main/projects/blip2) - [Paper](https://arxiv.org/abs/2301.12597)")
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+
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+
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+ with gr.Row():
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+ with gr.Column():
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+ input_image = gr.Image(label="Image", type="pil")
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+ caption_type = gr.Radio(["Beam Search", "Nucleus Sampling"], label="Caption Type", value="Beam Search")
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+ btn_caption = gr.Button("Generate Caption")
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+
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+ question_txt = gr.Textbox(label="Question", lines=1)
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+ btn_answer = gr.Button("Generate Answer")
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+
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+ with gr.Column():
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+ output_text = gr.Textbox(label="Answer", lines=5)
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+
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+ btn_caption.click(generate_caption, inputs=[input_image, caption_type], outputs=[output_text])
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+ btn_answer.click(answer_question, inputs=[input_image, question_txt], outputs=[output_text])
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+
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+ gr.Examples([['./merlion.png', 'Beam Search', 'which city is this?']], inputs=[input_image, caption_type, question_txt])
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+
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+ demo.launch()
merlion.png ADDED

Git LFS Details

  • SHA256: f1f3b6a507ec92e8f47ac6d7c64e11b03fcba8c550bcb6851f80e261e8951431
  • Pointer size: 132 Bytes
  • Size of remote file: 1.6 MB
requirements.txt ADDED
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+ torch
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+ torchvision
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+ salesforce-lavis