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import streamlit as st |
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import streamlit.components.v1 as com |
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from transformers import AutoModelForSequenceClassification, AutoTokenizer, AutoConfig |
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import numpy as np |
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from scipy.special import softmax |
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from transformers import pipeline |
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st.set_page_config(page_title='Sentiments Analysis',page_icon='π',layout='wide') |
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com.iframe("https://embed.lottiefiles.com/animation/149093") |
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st.markdown("<h1 style='text-align: center'> Covid Vaccine Tweet Sentiments </h1>",unsafe_allow_html=True) |
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st.write("<h2 style='font-size: 24px;'> These models were trained to detect how a user feels about the covid vaccines based on their tweets(text) </h2>",unsafe_allow_html=True) |
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with st.form(key='tweet',clear_on_submit=True): |
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text=st.text_area('Copy and paste a tweet or type one',placeholder='I find it quite amusing how people ignore the effects of not taking the vaccine') |
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alt_text=st.selectbox("Can't Type? Select an Example below",('I hate the vaccines','Vaccines made from dead human tissues','Take the vaccines or regret the consequences','Covid is a Hoax','Making the vaccines is a huge step forward for humanity. Just take them')) |
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models={'Bert':'UholoDala/tweet_sentiments_analysis_bert', |
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'Distilbert':'UholoDala/tweet_sentiments_analysis_distilbert', |
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'Roberta':'UholoDala/tweet_sentiments_analysis_roberta'} |
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model=st.selectbox('Which model would you want to Use?',('Bert','Distilbert','Roberta')) |
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submit=st.form_submit_button('Predict','Continue processing input') |
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selected_model=models[model] |
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col1,col2,col3=st.columns(3) |
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col1.write('<h2 style="font-size: 24px;"> Sentiment Emoji </h2>',unsafe_allow_html=True) |
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col2.write('<h2 style="font-size: 24px;"> How this user feels about the vaccine </h2>',unsafe_allow_html=True) |
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col3.write('<h2 style="font-size: 24px;"> Confidence of this prediction </h2>',unsafe_allow_html=True) |
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if submit: |
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if text=="": |
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text=alt_text |
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st.success(f"input text is set to '{text}'") |
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else: |
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st.success('Text received',icon='β
') |
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pipe=pipeline(model=selected_model) |
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output=pipe(text) |
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output_dict=output[0] |
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lable=output_dict['label'] |
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score=output_dict['score'] |
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if lable=='NEGATIVE' or lable=='LABEL_0': |
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with col1: |
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com.iframe("https://embed.lottiefiles.com/animation/125694") |
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col2.write('NEGATIVE') |
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col3.write(f'{score:.2%}') |
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elif lable=='POSITIVE'or lable=='LABEL_2': |
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with col1: |
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com.iframe("https://embed.lottiefiles.com/animation/148485") |
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col2.write('POSITIVE') |
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col3.write(f'{score:.2%}') |
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else: |
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with col1: |
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com.iframe("https://embed.lottiefiles.com/animation/136052") |
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col2.write('NEUTRAL') |
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col3.write(f'{score:.2%}') |