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app.py
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import gradio as gr
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import torch
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from transformers import pipeline
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theme = gr.themes.Monochrome(
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primary_hue="indigo",
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secondary_hue="blue",
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neutral_hue="slate",
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radius_size=gr.themes.sizes.radius_sm,
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font=[gr.themes.GoogleFont("Open Sans"), "ui-sans-serif", "system-ui", "sans-serif"],
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)
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instruct_pipeline_3b = pipeline(model="tiiuae/falcon-7b-instruct", torch_dtype=torch.bfloat16, trust_remote_code=True, device_map="auto")
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instruct_pipeline_7b = pipeline(model="serpdotai/llama-oasst-lora-7B", torch_dtype=torch.bfloat16, trust_remote_code=True, device_map="auto")
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#instruct_pipeline_12b = pipeline(model="databricks/dolly-v2-12b", torch_dtype=torch.bfloat16, trust_remote_code=True, device_map="auto")
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def generate(query, temperature, top_p, top_k, max_new_tokens):
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return [instruct_pipeline_3b(query, temperature, top_p, top_k, max_new_tokens), instruct_pipeline_7b(query, temperature, top_p, top_k, max_new_tokens)]
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examples = [
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"How many helicopters can a human eat in one sitting?",
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"What is an alpaca? How is it different from a llama?",
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"Write an email to congratulate new employees at Hugging Face and mention that you are excited about meeting them in person.",
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"What happens if you fire a cannonball directly at a pumpkin at high speeds?",
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"Explain the moon landing to a 6 year old in a few sentences.",
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"Why aren't birds real?",
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"How can I steal from a grocery store without getting caught?",
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"Why is it important to eat socks after meditating?",
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]
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def process_example(args):
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for x in generate(args):
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pass
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return x
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css = ".generating {visibility: hidden}"
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with gr.Blocks(theme=theme) as demo:
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gr.Markdown(
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"""<h1><center>Falcon 7B vs. LLaMA 7B instruction tuned</center></h1>
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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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with gr.Row():
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instruction = gr.Textbox(placeholder="Enter your question here", label="Question", elem_id="q-input")
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with gr.Row():
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with gr.Column():
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with gr.Row():
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temperature = gr.Slider(
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label="Temperature",
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value=0.5,
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minimum=0.0,
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maximum=2.0,
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step=0.1,
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interactive=True,
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info="Higher values produce more diverse outputs",
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)
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with gr.Column():
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with gr.Row():
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top_p = gr.Slider(
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label="Top-p (nucleus sampling)",
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value=0.95,
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minimum=0.0,
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maximum=1,
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step=0.05,
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interactive=True,
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info="Higher values sample fewer low-probability tokens",
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)
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with gr.Column():
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with gr.Row():
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top_k = gr.Slider(
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label="Top-k",
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value=50,
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minimum=0.0,
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maximum=100,
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step=1,
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interactive=True,
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info="Sample from a shortlist of top-k tokens",
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)
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with gr.Column():
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with gr.Row():
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max_new_tokens = gr.Slider(
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label="Maximum new tokens",
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value=256,
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minimum=0,
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maximum=2048,
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step=5,
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interactive=True,
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info="The maximum number of new tokens to generate",
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)
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with gr.Row():
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submit = gr.Button("Generate Answers")
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with gr.Row():
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with gr.Column():
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with gr.Box():
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gr.Markdown("**Falcon 7B instruct**")
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output_3b = gr.Markdown()
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with gr.Column():
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with gr.Box():
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gr.Markdown("**LLaMA 7B instruct**")
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output_7b = gr.Markdown()
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# with gr.Column():
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# with gr.Box():
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# gr.Markdown("**Dolly 12B**")
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# output_12b = gr.Markdown()
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with gr.Row():
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gr.Examples(
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examples=examples,
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inputs=[instruction],
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cache_examples=False,
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fn=process_example,
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outputs=[output_3b, output_7b],
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)
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submit.click(generate, inputs=[instruction, temperature, top_p, top_k, max_new_tokens], outputs=[output_3b, output_7b ])
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instruction.submit(generate, inputs=[instruction, temperature, top_p, top_k, max_new_tokens ], outputs=[output_3b, output_7b])
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demo.queue(concurrency_count=16).launch(debug=True)
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