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Configuration error
Configuration error
Update app.py
Browse files
app.py
CHANGED
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import base64
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import io
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import os
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from dataclasses import dataclass
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from typing import List, Optional, Tuple, Dict, Any
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import
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import gradio as gr
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import pandas as pd
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import numpy as np
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import plotly.express as px
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import plotly.graph_objects as go
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from plotly.subplots import make_subplots
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from litellm import completion
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class DataAnalyzer:
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"""Handles data analysis and visualization"""
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template="plotly_white"
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)
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# Convert to HTML string
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return fig.to_html(include_plotlyjs=True, full_html=False)
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def create_scatter(self, x_col: str, y_col: str, color_col: Optional[str] = None,
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fig = go.Figure()
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# Create box plot for each category
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for category in self.data[x_col].unique():
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fig.add_trace(go.Box(
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y=self.data[self.data[x_col] == category][y_col],
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name=str(category),
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boxpoints='all',
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jitter=0.3,
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pointpos=-1.8
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))
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return self.history
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def chat(self, message: str, api_key: str) -> Tuple[List[Tuple[str, str]], str]:
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try:
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os.environ["OPENAI_API_KEY"] = api_key
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# Get data context
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context = self._get_data_context()
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# Get AI response
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completion_response = completion(
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model="gpt-4o-mini",
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messages=[
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{"role": "system", "content": self._get_system_prompt()},
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{"role": "user", "content": f"{context}\n\nUser question: {message}"}
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],
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temperature=0.7
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)
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analysis = completion_response.choices[0].message.content
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# Create visualizations
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plots_html = ""
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try:
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}
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except Exception as e:
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# Update chat history
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self.history.append((message, analysis))
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return self.history, plots_html
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except Exception as e:
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self.history.append((message, f"Error: {str(e)}"))
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return self.history, ""
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def _get_data_context(self) -> str:
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"""Get current data context for AI"""
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{stats}
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Available visualization functions:
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- analyzer.create_scatter(x_col, y_col, color_col, title)
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- analyzer.create_line(x_col, y_cols, title)
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- analyzer.create_bar(x_col, y_col, color_col, title)
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- analyzer.create_histogram(column, bins, title)
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- analyzer.
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- analyzer.
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"""
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def _get_system_prompt(self) -> str:
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Available visualization functions:
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1. create_histogram(column, bins, title) - For distribution analysis
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print(result)
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# Create scatter plot
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result = analyzer.create_scatter(
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x_col='Date',
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y_col='Salary',
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print(result)
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```
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Always wrap code in Python code blocks and use print() to display the visualizations.
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Provide analysis and insights about what the visualizations show."""
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def create_interface():
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analyzer = ChatAnalyzer()
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# Custom CSS
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css = """
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.container { max-width: 1200px; margin: auto; }
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.plot-container {
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border-radius: 8px;
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background: #f8f9fa;
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}
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.title {
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text-align: center;
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margin-bottom: 20px;
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}
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.footer {
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text-align: center;
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margin-top: 20px;
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font-size: 0.9em;
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color: #666;
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}
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"""
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with gr.Blocks(css=css
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gr.Markdown("""
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# Interactive Data Analysis Chat
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Upload your data and chat with AI to analyze it! Features:
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- Interactive visualizations
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- Natural language analysis
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- Statistical
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- Trend detection
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Start by uploading a CSV or Excel file.
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""")
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with gr.Row():
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with gr.Column(scale=1):
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file = gr.File(
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label="Upload Data (CSV or Excel)",
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file_types=[".csv", ".xlsx", ".xls"]
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elem_classes="file-upload"
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)
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api_key = gr.Textbox(
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label="OpenAI API Key",
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type="password",
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placeholder="Enter your API key"
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elem_classes="api-input"
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)
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with gr.Column(scale=2):
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chatbot = gr.Chatbot(
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height=400,
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elem_classes="chat-message"
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)
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message = gr.Textbox(
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label="Ask about your data",
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placeholder="e.g., Show me trends in the data",
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lines=2,
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elem_classes="message-input",
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scale=4
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)
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send = gr.Button(
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"Send",
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scale=1,
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elem_classes="send-button"
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)
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# Plot output area
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plot_output = gr.HTML(
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label="Visualizations",
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elem_classes="plot-container"
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visible=True # Always show container even when empty
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)
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# Event handlers
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file.change(
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inputs=[file],
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outputs=[chatbot]
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api_name="upload"
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)
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# Handle both click and enter key
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msg_handler = send.click(
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fn=analyzer.chat,
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inputs=[message, api_key],
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outputs=[chatbot, plot_output],
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api_name="chat"
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)
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inputs=[message, api_key],
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outputs=[chatbot, plot_output]
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)
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# Clear message after sending
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msg_handler.then(
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fn=lambda: "",
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inputs=[],
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outputs=[message]
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)
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# Example queries
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gr.Examples(
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examples=[
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["Show me a
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["Create a
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["Show
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["
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["Show trends over time using line plots and explain the patterns"],
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["Generate a comprehensive analysis with multiple visualizations"],
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["Compare the distribution across different categories using appropriate plots"],
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["Identify and visualize any seasonal patterns or cycles in the data"],
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],
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inputs=
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label="Example Analysis Queries"
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)
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# Tips section
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gr.Markdown("""
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### Tips for better analysis:
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1. **Data Preparation**: Upload clean CSV or Excel files with clear column names
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2. **Specific Questions**: Ask clear, specific questions about your data
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3. **Interactive Features**: Use zoom, pan, and hover on visualizations
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4. **Follow-up Questions**: Ask for deeper analysis of interesting patterns
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5. **Multiple Views**: Request different visualization types for better insights
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### Available Visualization Types:
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- Scatter plots for relationships
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- Line plots for trends
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- Bar charts for comparisons
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- Histograms for distributions
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- Box plots for statistical summaries
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- Correlation matrices for relationship analysis
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""")
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# Footer
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gr.Markdown("""
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<div class="footer">
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Built with Gradio • Powered by OpenAI • Interactive Visualizations
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</div>
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""")
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# Theme customization
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demo.theme = gr.themes.Soft(
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primary_hue="blue",
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secondary_hue="gray",
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neutral_hue="gray",
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text_size=gr.themes.sizes.text_md
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)
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return demo
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if __name__ == "__main__":
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demo = create_interface()
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demo.launch(
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share=False, # Set to True to create a public link
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debug=True, # Set to False in production
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show_error=True, # Show detailed error messages
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server_port=7860 # Specify port number
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)
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import os
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from typing import List, Optional, Tuple, Dict, Any
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import base64
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import io
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import gradio as gr
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import pandas as pd
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import numpy as np
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import plotly.graph_objects as go
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from litellm import completion
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class DataAnalyzer:
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"""Handles data analysis and visualization"""
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template="plotly_white"
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)
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return fig.to_html(include_plotlyjs=True, full_html=False)
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def create_scatter(self, x_col: str, y_col: str, color_col: Optional[str] = None,
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fig = go.Figure()
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for category in self.data[x_col].unique():
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fig.add_trace(go.Box(
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y=self.data[self.data[x_col] == category][y_col],
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name=str(category),
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boxpoints='all',
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jitter=0.3,
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pointpos=-1.8
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))
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return self.history
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def chat(self, message: str, api_key: str) -> Tuple[List[Tuple[str, str]], str]:
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"""Process chat message and generate visualizations"""
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if self.analyzer.data is None:
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return [(message, "Please upload a data file first.")], ""
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if not api_key:
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return [(message, "Please provide an OpenAI API key.")], ""
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try:
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os.environ["OPENAI_API_KEY"] = api_key
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# Get data context
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context = self._get_data_context()
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# Get AI response
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completion_response = completion(
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model="gpt-4o-mini",
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messages=[
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{"role": "system", "content": self._get_system_prompt()},
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{"role": "user", "content": f"{context}\n\nUser question: {message}"}
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],
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temperature=0.7
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)
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analysis = completion_response.choices[0].message.content
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# Create visualizations
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plots_html = ""
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try:
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# Extract code blocks
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import re
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code_blocks = re.findall(r'```python\n(.*?)```', analysis, re.DOTALL)
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for code in code_blocks:
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# Create namespace for execution
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namespace = {
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'analyzer': self.analyzer,
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'df': self.analyzer.data,
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'print': lambda x: x
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}
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# Execute the code
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try:
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result = eval(code, namespace)
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if isinstance(result, str) and ('<div' in result or '<script' in result):
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plots_html += f'<div class="plot-container">{result}</div>'
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except:
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exec(code, namespace)
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except Exception as e:
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analysis += f"\n\nError creating visualization: {str(e)}"
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# Update chat history
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self.history.append((message, analysis))
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return self.history, plots_html
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except Exception as e:
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self.history.append((message, f"Error: {str(e)}"))
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return self.history, ""
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def _get_data_context(self) -> str:
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"""Get current data context for AI"""
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{stats}
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Available visualization functions:
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- analyzer.create_histogram(column, bins, title)
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- analyzer.create_scatter(x_col, y_col, color_col, title)
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- analyzer.create_box(x_col, y_col, title)
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- analyzer.create_line(x_col, y_col, color_col, title)
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"""
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def _get_system_prompt(self) -> str:
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"""Get system prompt for AI"""
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return """You are a data analysis assistant specialized in creating interactive visualizations.
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Available visualization functions:
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1. create_histogram(column, bins, title) - For distribution analysis
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print(result)
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# Create scatter plot with time series
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result = analyzer.create_scatter(
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x_col='Date',
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y_col='Salary',
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print(result)
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```
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Always wrap code in Python code blocks and use print() to display the visualizations.
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Provide analysis and insights about what the visualizations show."""
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def create_interface():
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analyzer = ChatAnalyzer()
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# Custom CSS
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css = """
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.container { max-width: 1200px; margin: auto; }
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.plot-container {
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border-radius: 8px;
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background: #f8f9fa;
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}
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"""
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+
with gr.Blocks(css=css) as demo:
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gr.Markdown("""
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# Interactive Data Analysis Chat
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Upload your data and chat with AI to analyze it! Features:
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- Interactive visualizations
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- Natural language analysis
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- Statistical insights
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- Trend detection
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""")
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with gr.Row():
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with gr.Column(scale=1):
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file = gr.File(
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label="Upload Data (CSV or Excel)",
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file_types=[".csv", ".xlsx", ".xls"]
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)
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api_key = gr.Textbox(
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label="OpenAI API Key",
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type="password",
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placeholder="Enter your API key"
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)
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with gr.Column(scale=2):
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chatbot = gr.Chatbot(
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height=400,
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elem_classes="chat-message"
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)
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message = gr.Textbox(
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label="Ask about your data",
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placeholder="e.g., Show me trends in the data",
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lines=2
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)
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send = gr.Button("Send")
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# Plot output area
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plot_output = gr.HTML(
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label="Visualizations",
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elem_classes="plot-container"
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)
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# Event handlers
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file.change(
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analyzer.process_file,
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inputs=[file],
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outputs=[chatbot]
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)
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send.click(
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analyzer.chat,
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inputs=[message, api_key],
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outputs=[chatbot, plot_output]
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)
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# Example queries
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gr.Examples(
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examples=[
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["Show me a histogram of salary distribution"],
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["Create a scatter plot of salary trends over time"],
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["Show me box plots of salaries by title"],
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["Analyze the trends and patterns in the data"],
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],
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inputs=message
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)
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return demo
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if __name__ == "__main__":
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demo = create_interface()
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+
demo.launch()
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