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import gradio as gr |
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from model_utils import MODEL_OPTIONS, load_model, get_model_info |
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from visualize import ( |
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visualize_attention, |
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show_tokenization, |
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show_embeddings, |
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compare_model_sizes, |
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) |
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DEFAULT_MODEL_NAME = list(MODEL_OPTIONS.values())[0] |
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tokenizer, model = load_model(DEFAULT_MODEL_NAME) |
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current_tokenizer = tokenizer |
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current_model = model |
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def update_model(selected_model_name): |
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global current_tokenizer, current_model |
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model_id = MODEL_OPTIONS[selected_model_name] |
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current_tokenizer, current_model = load_model(model_id) |
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info = get_model_info(current_model) |
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num_layers = info.get("Number of Layers", 1) |
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num_heads = info.get("Number of Attention Heads", 1) |
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return ( |
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info, |
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gr.update(maximum=num_layers - 1, value=0), |
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gr.update(maximum=num_heads - 1, value=0), |
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) |
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def run_all_visualizations(text, layer, head): |
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attention_fig = visualize_attention(current_tokenizer, current_model, text, layer, head) |
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token_fig = show_tokenization(current_tokenizer, text) |
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embedding_fig = show_embeddings(current_tokenizer, current_model, text) |
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return attention_fig, token_fig, embedding_fig |
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with gr.Blocks() as demo: |
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gr.Markdown("## π Transformer Explorer") |
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gr.Markdown("Explore attention, tokenization, and embedding visualizations for various transformer models.") |
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with gr.Row(): |
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model_dropdown = gr.Dropdown( |
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label="Choose a model", |
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choices=list(MODEL_OPTIONS.keys()), |
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value=list(MODEL_OPTIONS.keys())[0], |
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) |
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model_info = gr.JSON(label="Model Info") |
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with gr.Row(): |
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text_input = gr.Textbox(label="Enter text", value="The quick brown fox jumps over the lazy dog.") |
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layer_slider = gr.Slider(label="Layer", minimum=0, maximum=11, step=1, value=0) |
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head_slider = gr.Slider(label="Head", minimum=0, maximum=11, step=1, value=0) |
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run_button = gr.Button("Run Visualizations") |
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with gr.Tab("π Attention"): |
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attention_plot = gr.Plot() |
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with gr.Tab("π§© Tokenization"): |
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token_plot = gr.Plot() |
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with gr.Tab("π Embeddings"): |
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embedding_plot = gr.Plot() |
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with gr.Tab("π¦ Model Size Comparison"): |
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model_compare_plot = gr.Plot(value=compare_model_sizes()) |
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model_dropdown.change(fn=update_model, inputs=[model_dropdown], outputs=[model_info, layer_slider, head_slider]) |
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run_button.click( |
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fn=run_all_visualizations, |
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inputs=[text_input, layer_slider, head_slider], |
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outputs=[attention_plot, token_plot, embedding_plot], |
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) |
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if __name__ == "__main__": |
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demo.launch() |
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