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Update app.py
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app.py
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import gradio as gr
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from transformers import pipeline
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pipe = pipeline("summarization", model="Gabriel/bart-base-cnn-xsum-swe")
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def
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print(in_text)
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answer = pipe(in_text, num_beams=5 ,min_length=20, max_length=120)
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print(answer)
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return answer[0]["summary_text"]
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with gr.Blocks() as demo:
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with gr.
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import gradio as gr
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from transformers import pipeline
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import pandas as pd
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import json
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pipe = pipeline("summarization", model="Gabriel/bart-base-cnn-xsum-swe")
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def generate(in_text):
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print(in_text)
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answer = pipe(in_text, num_beams=5 ,min_length=20, max_length=120)
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print(answer)
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return answer[0]["summary_text"]
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def update_history(df, in_text, gen_text ,generation_type, parameters):
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# get rid of first seed phrase
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new_row = [{"In_text": in_text,
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"Gen_text": gen_text,
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"Generation Type": generation_type,
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"Parameters": json.dumps(parameters)}]
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return pd.concat([df, pd.DataFrame(new_row)])
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def generate_transformer(in_text, num_beams ,history):
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gen_text= generate(in_text)
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return gen_text, update_history(history, in_text, gen_text, "Transformer", {"num_beams": num_beams})
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with gr.Blocks() as demo:
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gr.Markdown("""# Summarization Engine!""")
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with gr.Accordion("See Details", open=False):
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gr.Markdown("lorem ipsum")
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with gr.Tabs():
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with gr.TabItem("Transformer Generation"):
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gr.Markdown(
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"""The default parameters for distilgpt2 work well to generate moves. Use this tab as
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a baseline for your experiments.""")
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with gr.Row():
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with gr.Column(scale=4):
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text_baseline_transformer= gr.Textbox(lines=4,label="Input Text", placeholder="hej hej",)
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with gr.Column(scale=3):
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with gr.Row():
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num_beams = gr.Slider(minimum=2, maximum=10, value=2, step=1, label="Number of Beams2")
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output_basline_transformer = gr.Textbox(label="Output Text")
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transformer_button = gr.Button("Summarize!")
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# with gr.TabItem("Strong Baseline"):
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# gr.Markdown(
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# """The default parameters for distilgpt2 work well to generate moves. Use this tab as
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# a baseline for your experiments.""")
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# with gr.Row():
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# with gr.Column(scale=4):
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# text_baseline= gr.Textbox(lines=4,label="Input Text", placeholder="hej hej",)
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# with gr.Column(scale=3):
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# with gr.Row():
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# num_beams2 = gr.Slider(minimum=2, maximum=10, value=2, step=1, label="Number of Beams2")
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# num_beams3 = gr.Slider(minimum=2, maximum=10, value=2, step=1, label="Number of Beams3")
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# output_basline = gr.Textbox(label="Output Text")
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# baseline_button = gr.Button("Summarize!")
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# with gr.TabItem("LexRank"):
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# gr.Markdown(
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# """The default parameters for distilgpt2 work well to generate moves. Use this tab as
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# a baseline for your experiments.""")
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# with gr.Row():
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# label="Number of Beams")
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# text_baseline= gr.Textbox(label="Input Text", placeholder="hej hej",)
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# output_basline = gr.Textbox(label="Output Text")
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# baseline_button = gr.Button("Summarize!")
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gr.Examples([["hi", 5]], [text_baseline_transformer, num_beams])
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with gr.Box():
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gr.Markdown("<h3> Generation History <h3>")
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# Displays a dataframe with the history of moves generated, with parameters
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history = gr.Dataframe(headers=["In_text", "Gen_text", "Generation Type", "Parameters"], overflow_row_behaviour="show_ends", wrap=True)
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with gr.Box():
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gr.Markdown("<h3>How did you make this?<h3>")
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# gr.Markdown("""hej bottom.""")
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transformer_button.click(generate_transformer, inputs=[text_baseline_transformer, num_beams ,history], outputs=[output_basline_transformer , history] )
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# baseline_button.click(generate_transformer, inputs=[text_baseline, num_beams2 ,history], outputs=[output_basline,history] )
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demo.launch()
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