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Create ui/layout.py
Browse files- ui/layout.py +91 -0
ui/layout.py
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# ui/layout.py
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import gradio as gr
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from core.config import settings
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def create_main_layout():
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"""Defines and returns the entire Gradio UI structure."""
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with gr.Blocks(theme=gr.themes.Soft(primary_hue="blue", secondary_hue="indigo"), title=settings.APP_TITLE) as demo:
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# State object to hold the DataAnalyzer instance
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state_analyzer = gr.State()
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# --- Header ---
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gr.Markdown(f"<h1>{settings.APP_TITLE}</h1>")
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gr.Markdown("A world-class data discovery platform that provides a complete suite of EDA tools and intelligently unlocks specialized analysis modules for Time-Series, Text, and Clustering.")
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# --- Input Row ---
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with gr.Row():
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upload_button = gr.File(label="1. Upload Data File (CSV, Excel)", file_types=[".csv", ".xlsx"], scale=3)
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analyze_button = gr.Button("β¨ Generate Intelligence Report", variant="primary", scale=1)
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# --- Main Tabs ---
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with gr.Tabs():
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# Tab 1: AI Narrative
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with gr.Tab("π€ AI-Powered Strategy Report", id="tab_ai"):
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ai_report_output = gr.Markdown("### Your AI-generated report will appear here after analysis...")
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# Tab 2: Data Profile
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with gr.Tab("π Data Profile", id="tab_profile"):
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with gr.Accordion("Missing Values Report", open=False):
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profile_missing_df = gr.DataFrame()
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with gr.Accordion("Numeric Features Summary", open=True):
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profile_numeric_df = gr.DataFrame()
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with gr.Accordion("Categorical Features Summary", open=True):
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profile_categorical_df = gr.DataFrame()
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# Tab 3: Overview Visuals
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with gr.Tab("π Overview Visuals", id="tab_overview"):
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with gr.Row():
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plot_types = gr.Plot()
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plot_missing = gr.Plot()
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plot_correlation = gr.Plot()
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# Tab 4: Interactive Explorer
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with gr.Tab("π¨ Interactive Explorer", id="tab_explorer"):
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gr.Markdown("### Univariate Analysis")
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with gr.Row():
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dd_hist_col = gr.Dropdown(label="Select Column for Histogram", interactive=True)
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plot_histogram = gr.Plot()
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gr.Markdown("### Bivariate Analysis")
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with gr.Row():
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with gr.Column(scale=1):
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dd_scatter_x = gr.Dropdown(label="X-Axis (Numeric)", interactive=True)
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dd_scatter_y = gr.Dropdown(label="Y-Axis (Numeric)", interactive=True)
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dd_scatter_color = gr.Dropdown(label="Color By (Optional)", interactive=True)
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with gr.Column(scale=2):
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plot_scatter = gr.Plot()
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# Tab 5: Time-Series Analysis (Conditional)
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with gr.Tab("β Time-Series Analysis", id="tab_timeseries", visible=False) as tab_timeseries:
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# ... layout for time series ...
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pass # Placeholder for brevity
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# Tab 6: Text Analysis (Conditional)
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with gr.Tab("π Text Analysis", id="tab_text", visible=False) as tab_text:
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# ... layout for text ...
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pass # Placeholder for brevity
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# Tab 7: Clustering Analysis (Conditional)
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with gr.Tab("π§© Clustering (K-Means)", id="tab_cluster", visible=False) as tab_cluster:
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with gr.Row():
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with gr.Column(scale=1):
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num_clusters = gr.Slider(minimum=2, maximum=10, value=3, step=1, label="Number of Clusters (K)", interactive=True)
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md_cluster_summary = gr.Markdown()
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with gr.Column(scale=2):
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plot_cluster = gr.Plot()
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plot_elbow = gr.Plot()
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# Collect all components that need to be updated
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# This is a bit verbose but necessary for Gradio's output mapping
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components = {
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"state_analyzer": state_analyzer, "upload_button": upload_button, "analyze_button": analyze_button,
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"ai_report_output": ai_report_output, "profile_missing_df": profile_missing_df,
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"profile_numeric_df": profile_numeric_df, "profile_categorical_df": profile_categorical_df,
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"plot_types": plot_types, "plot_missing": plot_missing, "plot_correlation": plot_correlation,
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"dd_hist_col": dd_hist_col, "plot_histogram": plot_histogram, "dd_scatter_x": dd_scatter_x,
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"dd_scatter_y": dd_scatter_y, "dd_scatter_color": dd_scatter_color, "plot_scatter": plot_scatter,
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"tab_timeseries": tab_timeseries, "tab_text": tab_text, "tab_cluster": tab_cluster,
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"num_clusters": num_clusters, "md_cluster_summary": md_cluster_summary,
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"plot_cluster": plot_cluster, "plot_elbow": plot_elbow,
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}
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return demo, components
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