GoodML commited on
Commit
149d42c
1 Parent(s): c42a854

Update app.py

Browse files
Files changed (1) hide show
  1. app.py +24 -19
app.py CHANGED
@@ -79,35 +79,40 @@ def analyze_sentiment(comment):
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  def main():
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  st.title("YouTube Comments Sentiment Analysis")
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  st.write("Enter a YouTube video link below:")
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-
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  video_url = st.text_input("YouTube Video URL:")
 
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  if st.button("Extract Comments and Analyze"):
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  video_id = extract_video_id(video_url)
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  if video_id:
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  comments_df = fetch_comments(video_id)
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- # Comments is a dataframe of just the comments text
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- # st.write("Top 100 Comments extracted\n", comments_df)
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  comments_df['sentiment'] = comments_df['comment'].apply(lambda x: analyze_sentiment(x[:512]))
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  sentiment_counts = comments_df['sentiment'].value_counts()
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- positive_count = comments_df['sentiment'].value_counts().get('Positive', 0)
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- negative_count = comments_df['sentiment'].value_counts().get('Negative', 0)
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- neutral_count = comments_df['sentiment'].value_counts().get('Neutral', 0)
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-
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- # Create pie chart in col2 with custom colors
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- fig_pie = px.pie(values=[positive_count, negative_count, neutral_count],
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- names=['Positive', 'Negative', 'Neutral'],
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- title='Pie chart representations',
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- color=sentiment_counts.index, # Use sentiment categories as colors
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- color_discrete_map={'Positive': 'green', 'Negative': 'red', 'Neutral': 'blue'})
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  st.plotly_chart(fig_pie, use_container_width=True)
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- # Create bar chart below the pie chart with custom colors
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- fig_bar = px.bar(x=sentiment_counts.index, y=sentiment_counts.values,
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- labels={'x': 'Sentiment', 'y': 'Count'},
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- title='Bar plot representations',
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- color=sentiment_counts.index, # Use sentiment categories as colors
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- color_discrete_map={'Positive': 'green', 'Negative': 'red', 'Neutral': 'blue'})
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  st.plotly_chart(fig_bar)
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  def main():
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  st.title("YouTube Comments Sentiment Analysis")
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+
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+ # Create sidebar section for app description and links
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+ st.sidebar.title("App Information")
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+ st.sidebar.write("Welcome to the YouTube Comments Sentiment Analysis App.")
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+ st.sidebar.write("This app extracts comments from a YouTube video and analyzes their sentiment.")
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+ st.sidebar.write("Feel free to check out our other apps:")
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+
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+ # Dropdown menu for other app links
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+ app_links = {
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+ "App 1": "https://your-app-1-url.com",
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+ "App 2": "https://your-app-2-url.com"
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+ }
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+ selected_app = st.sidebar.selectbox("Select an App", list(app_links.keys()))
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+ if st.sidebar.button("Go to App"):
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+ st.sidebar.write(f"You are now redirected to {selected_app}")
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+ st.sidebar.write(f"Link: {app_links[selected_app]}")
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+ st.sidebar.success("Redirected successfully!")
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+
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  st.write("Enter a YouTube video link below:")
 
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  video_url = st.text_input("YouTube Video URL:")
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+
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  if st.button("Extract Comments and Analyze"):
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  video_id = extract_video_id(video_url)
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  if video_id:
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  comments_df = fetch_comments(video_id)
 
 
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  comments_df['sentiment'] = comments_df['comment'].apply(lambda x: analyze_sentiment(x[:512]))
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  sentiment_counts = comments_df['sentiment'].value_counts()
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+
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+ # Create pie chart
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+ fig_pie = px.pie(values=sentiment_counts.values, names=sentiment_counts.index, title='Sentiment Distribution')
 
 
 
 
 
 
 
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  st.plotly_chart(fig_pie, use_container_width=True)
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+ # Create bar chart
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+ fig_bar = px.bar(x=sentiment_counts.index, y=sentiment_counts.values, labels={'x': 'Sentiment', 'y': 'Count'}, title='Sentiment Counts')
 
 
 
 
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  st.plotly_chart(fig_bar)
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