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	initial commit
Browse files- app.py +76 -4
- requirements.txt +8 -0
    	
        app.py
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            import gradio as gr
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            def greet(name):
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                return "Hello " + name + "!!"
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            import gradio as gr
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            import spaces
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            from transformers import AutoModelForCausalLM, AutoProcessor, AutoTokenizer
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            import torch
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            from PIL import Image
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            import subprocess
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            models = {
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                "Qwen/Qwen2-VL-7B-Instruct": AutoModelForCausalLM.from_pretrained("Qwen/Qwen2-VL-7B-Instruct", torch_dtype="auto", device_map="auto")
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            }
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            processors = {
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                "Qwen/Qwen2-VL-7B-Instruct": AutoProcessor.from_pretrained("Qwen/Qwen2-VL-7B-Instruct")
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            }
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            DESCRIPTION = "# Qwen2-VL Object Localization Demo"
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            @spaces.GPU
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            def run_example(image, text_input, model_id="Qwen/Qwen2-VL-7B-Instruct"):
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                model = models[model_id].eval().cuda()
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                processor = processors[model_id]
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                messages = [
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                    {
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                        "role": "user",
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                        "content": [
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                            {"type": "image", "image": image},
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                            {"type": "text", "text": f"Give a bounding box for {text_input}"},
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                        ],
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                    }
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                ]
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                text = processor.apply_chat_template(
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                    messages, tokenize=False, add_generation_prompt=True
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                )
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                image_inputs, video_inputs = process_vision_info(messages)
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                inputs = processor(
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                    text=[text],
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                    images=image_inputs,
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                    videos=video_inputs,
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                    padding=True,
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                    return_tensors="pt",
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                )
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                inputs = inputs.to("cuda")
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                generated_ids = model.generate(**inputs, max_new_tokens=128)
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                generated_ids_trimmed = [
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                    out_ids[len(in_ids) :] for in_ids, out_ids in zip(inputs.input_ids, generated_ids)
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                ]
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                output_text = processor.batch_decode(
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                    generated_ids_trimmed, skip_special_tokens=True, clean_up_tokenization_spaces=False
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                )
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                return output_text
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            css = """
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              #output {
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                height: 500px; 
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                overflow: auto; 
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                border: 1px solid #ccc; 
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              }
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            """
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            with gr.Blocks(css=css) as demo:
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                gr.Markdown(DESCRIPTION)
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                with gr.Tab(label="Qwen2-VL Input"):
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                    with gr.Row():
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                        with gr.Column():
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                            input_img = gr.Image(label="Input Picture")
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                            model_selector = gr.Dropdown(choices=list(models.keys()), label="Model", value="Qwen/Qwen2-VL-7B-Instruct")
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                            text_input = gr.Textbox(label="Description of Localization Target")
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                            submit_btn = gr.Button(value="Submit")
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                        with gr.Column():
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                            output_text = gr.Textbox(label="Output Text")
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                    submit_btn.click(run_example, [input_img, text_input, model_selector], [output_text])
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            demo.launch(debug=True)
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        requirements.txt
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            numpy==1.24.4
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            Pillow==10.3.0
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            Requests==2.31.0
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            torch
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            torchvision
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            transformers==4.43.0
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            accelerate==0.30.0
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            qwen-vl-utils
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