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# app.py (Final Version with Local Samples, Checkbox Selector, and UI Fixes)

import gradio as gr
from pathlib import Path
import asyncio
from PIL import Image

from app.prediction import PredictionPipeline
from app.database import add_patient_record, get_all_records

# --- Initialization ---
prediction_pipeline = PredictionPipeline()
# --- FIX: Point to the locally cloned sample images directory from setup.sh ---
SAMPLE_IMAGE_DIR = Path("sample_images") 
try:
    SAMPLE_IMAGES = [str(p) for p in sorted(list(SAMPLE_IMAGE_DIR.glob('*/*.jpeg')))]
    if not SAMPLE_IMAGES:
        raise FileNotFoundError
except FileNotFoundError:
    print("Warning: 'sample_images' directory not found or is empty. Samples will be unavailable.")
    SAMPLE_IMAGES = []


# --- Core Logic Functions (Unchanged and Correct) ---
async def process_analysis(patient_name, patient_age, image_list, is_sample=False):
    # ... (code is the same)
    if not is_sample and (not patient_name or patient_age is None): raise gr.Error("Patient Name and Age are required.")
    if not image_list: raise gr.Error("At least one image is required.")
    result = prediction_pipeline.predict(image_list)
    if "error" in result: raise gr.Error(result["error"])
    final_pred, final_conf = result["final_prediction"], result["final_confidence"]
    if not is_sample: await add_patient_record(str(patient_name), int(patient_age), final_pred, final_conf)
    confidences = {"NORMAL": 0.0, "PNEUMONIA": 0.0}; confidences[final_pred] = final_conf; confidences["NORMAL" if final_pred == "PNEUMONIA" else "PNEUMONIA"] = 1 - final_conf
    return [gr.update(visible=False), gr.update(visible=True), gr.update(value=result["watermarked_images"]), gr.update(value=confidences)]

async def refresh_history_table():
    # ... (code is the same)
    records = await get_all_records()
    data = [[r.get('name'), r.get('age'), r.get('prediction_result'), f"{r.get('confidence_score', 0):.2%}", r.get('timestamp').strftime('%Y-%m-%d %H:%M')] for r in records] if records else []
    return gr.update(value=data)

# --- Gradio UI Definition ---
css = """
/* --- Professional Dark Theme & Fonts --- */
:root { --primary-hue: 220 !important; --secondary-hue: 210 !important; --neutral-hue: 210 !important; --body-background-fill: #111827 !important; --block-background-fill: #1F2937 !important; --block-border-width: 1px !important; --border-color-accent: #374151 !important; --background-fill-secondary: #1F2937 !important;}
/* --- Header & Title Styling --- */
#app_header { text-align: center; }
#app_title { font-size: 2.8rem !important; font-weight: 700 !important; color: #FFFFFF !important; padding-top: 1rem; }
#app_subtitle { font-size: 1.2rem !important; color: #9CA3AF !important; margin-bottom: 2rem; }
/* --- Layout, Spacing, and Component Styling --- */
#main_container { gap: 2rem; }
#results_gallery .gallery-item { padding: 0.25rem !important; background-color: #374151; border: 1px solid #374151 !important; }
#bottom_controls { max-width: 600px; margin: 2.5rem auto 1rem auto; }
#bottom_controls .gr-accordion > .gr-block-label { text-align: center !important; display: block !important; }
/* --- FIX: Style the sample gallery for a cleaner look --- */
#sample_gallery { background-color: transparent !important; border: none !important; }
#sample_gallery .gallery-item { box-shadow: 0 0 5px rgba(0,0,0,0.5); border-radius: 8px !important; }
"""
with gr.Blocks(theme=gr.themes.Default(primary_hue="blue", secondary_hue="blue"), css=css, title="Pneumonia Detection AI") as demo:
    
    with gr.Column() as main_app:
        # ... (Main page layout is the same)
        with gr.Column(elem_id="app_header"):
            gr.Markdown("# 🩺 Pneumonia Detection AI", elem_id="app_title")
            gr.Markdown("An AI-powered tool to assist in the diagnosis of pneumonia.", elem_id="app_subtitle")
        with gr.Row(elem_id="main_container"):
            with gr.Column(scale=1) as uploader_column:
                gr.Markdown("### Upload Patient X-Rays")
                image_input = gr.File(label="Upload up to 3 Images", file_count="multiple", file_types=["image"], type="filepath")
            with gr.Column(scale=2, visible=False) as results_column:
                gr.Markdown("### Analysis Results")
                result_images = gr.Gallery(label="Analyzed Images", columns=3, object_fit="contain", height=350, elem_id="results_gallery")
                result_label = gr.Label(label="Overall Prediction", num_top_classes=2)
                start_over_btn = gr.Button("Start New Analysis", variant="secondary")
        with gr.Group(visible=False) as patient_info_modal:
            gr.Markdown("## Enter Patient Details", elem_classes="text-center")
            patient_name_modal = gr.Textbox(label="Patient Name", placeholder="e.g., John Doe")
            patient_age_modal = gr.Number(label="Patient Age", minimum=0, maximum=120, step=1)
            with gr.Row():
                submit_analysis_btn = gr.Button("Analyze Images", variant="primary")
                cancel_btn = gr.Button("Cancel", variant="stop")
        with gr.Column(elem_id="bottom_controls"):
            with gr.Accordion("About this Tool", open=False):
                gr.Markdown("...") # (Your professional description here)
            with gr.Row():
                samples_btn = gr.Button("Try Sample Images")
                history_btn = gr.Button("View Patient History")
                
    with gr.Column(visible=False) as history_page:
        # ... (History page layout is the same)
        gr.Markdown("# 📜 Patient Record History", elem_classes="app_title")
        with gr.Row():
            back_to_main_btn_hist = gr.Button("⬅️ Back to Main App")
            refresh_history_btn = gr.Button("Refresh History")
        history_df = gr.DataFrame(headers=["Name", "Age", "Prediction", "Confidence", "Date"], row_count=10, interactive=False)

    # --- SAMPLES PAGE (THE DEFINITIVE FIX) ---
    with gr.Column(visible=False) as samples_page:
        gr.Markdown("# 🖼️ Sample Image Library", elem_classes="app_title")
        gr.Markdown("Select up to 3 images, then click 'Analyze'.")
        
        # Use a CheckboxGroup with images for selection
        sample_checkboxes = gr.CheckboxGroup(
            label="Sample Images",
            # A choice is a tuple: (Image for display, file path for value)
            choices=[(Image.open(p), p) for p in SAMPLE_IMAGES],
            type="value",
            elem_id="sample_gallery" # Use the gallery CSS
        )
        
        with gr.Row():
            analyze_samples_btn = gr.Button("Analyze Selected Samples", variant="primary")
            back_to_main_btn_samp = gr.Button("⬅️ Back to Main App")
    
    # --- Event Handling Logic ---
    
    # ... (upload, modal, start over handlers are correct)
    def show_patient_info(files): return gr.update(visible=True) if files else gr.update(visible=False)
    image_input.upload(fn=show_patient_info, inputs=image_input, outputs=patient_info_modal)
    async def submit_and_hide_modal(name, age, files):
        analysis_results = await process_analysis(name, age, files)
        return [*analysis_results, gr.update(visible=False)]
    submit_analysis_btn.click(fn=submit_and_hide_modal, inputs=[patient_name_modal, patient_age_modal, image_input], outputs=[uploader_column, results_column, result_images, result_label, patient_info_modal])
    cancel_btn.click(lambda: (gr.update(visible=False), None), None, [patient_info_modal, image_input])
    start_over_btn.click(fn=None, js="() => { window.location.reload(); }")

    # --- SAMPLE PAGE LOGIC (THE FIX) ---
    async def handle_sample_analysis(selected_images: list):
        # selected_images is now a list of file paths from the checkbox group
        if not selected_images: raise gr.Error("Please select at least one sample image.")
        if len(selected_images) > 3: raise gr.Error("Please select no more than 3 sample images.")
        
        analysis_results = await process_analysis("Sample User", 0, selected_images, is_sample=True)
        
        # Return updates to show the results on the main page and hide this page
        return [
            gr.update(visible=True),   # main_app
            gr.update(visible=False),  # samples_page
            *analysis_results
        ]
    analyze_samples_btn.click(fn=handle_sample_analysis, inputs=[sample_checkboxes], outputs=[main_app, samples_page, uploader_column, results_column, result_images, result_label])

    # ... (Page Navigation is correct)
    all_pages = [main_app, history_page, samples_page]
    async def show_history_page_and_refresh():
        records_update = await refresh_history_table()
        return [gr.update(visible=False), gr.update(visible=True), gr.update(visible=False), records_update]
    def show_samples_page(): return [gr.update(visible=False), gr.update(visible=False), gr.update(visible=True)]
    def show_main_page(): return [gr.update(visible=True), gr.update(visible=False), gr.update(visible=False)]
    history_btn.click(fn=show_history_page_and_refresh, outputs=all_pages + [history_df])
    samples_btn.click(fn=show_samples_page, outputs=all_pages)
    back_to_main_btn_hist.click(fn=show_main_page, outputs=all_pages)
    back_to_main_btn_samp.click(fn=show_main_page, outputs=all_pages)
    refresh_history_btn.click(fn=refresh_history_table, outputs=history_df)
    demo.load(fn=refresh_history_table, outputs=history_df)

# --- Launch the App ---
if __name__ == "__main__":
    demo.launch()