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import nest_asyncio
nest_asyncio.apply()

import streamlit as st
from transformers import pipeline
import torch
from gtts import gTTS
import io
import time
import asyncio
import datetime

if not asyncio.get_event_loop().is_running():
    asyncio.set_event_loop(asyncio.new_event_loop())
    
# Initialize session state
if 'processed_data' not in st.session_state:
    st.session_state.processed_data = {
        'scenario': None,
        'story': None,
        'audio': None
    }

if 'image_data' not in st.session_state:
    st.session_state.image_data = None

if 'timer_start_time' not in st.session_state:
    st.session_state.timer_start_time = None

if 'timer_frozen' not in st.session_state:
    st.session_state.timer_frozen = False

if 'last_update_time' not in st.session_state:
    st.session_state.last_update_time = None

# Page setup
st.set_page_config(page_title="Your Image to Audio Story", page_icon="🦜")
st.header("Turn Your Image to a Short Audio Story for Children")

# Model loading
@st.cache_resource
def load_models():
    return {
        "img_model": pipeline("image-to-text", "cnmoro/tiny-image-captioning"),
        "story_model": pipeline("text-generation", "Qwen/Qwen2.5-0.5B-Instruct")
    }

models = load_models()

# Processing functions
def img2text(url):
    return models["img_model"](url)[0]["generated_text"]

def text2story(text):
    prompt = f"Generate a 100-word story about: {text}"
    messages = [
        {"role": "system", "content": "You are a helpful assistant."},
        {"role": "user", "content": prompt}
    ]
    response = models["story_model"](
        messages,
        max_new_tokens=100,
        do_sample=True,
        temperature=0.7
    )[0]["generated_text"]
    return response[2]["content"]

def text2audio(story_text):
    audio_io = io.BytesIO()
    tts = gTTS(text=story_text, lang='en', slow=False)
    tts.write_to_fp(audio_io)
    audio_io.seek(0)
    return {'audio': audio_io, 'sampling_rate': 16000}

# Create fixed containers for UI elements
image_container = st.empty()
timer_container = st.empty()
status_container = st.empty()
progress_container = st.empty()
results_container = st.container()

# Get current timer value
def get_formatted_timer():
    if st.session_state.timer_start_time is None:
        return "00:00"
    
    current_time = time.time()
    if st.session_state.timer_frozen:
        # Use the last update time if timer is frozen
        elapsed_seconds = int(st.session_state.last_update_time - st.session_state.timer_start_time)
    else:
        elapsed_seconds = int(current_time - st.session_state.timer_start_time)
        # Update the last update time
        st.session_state.last_update_time = current_time
    
    minutes = elapsed_seconds // 60
    seconds = elapsed_seconds % 60
    return f"{minutes:02d}:{seconds:02d}"

# UI components
uploaded_file = st.file_uploader("Select an Image After the Models are Loaded...")

# Always display the image if we have image data
if st.session_state.image_data is not None:
    image_container.image(st.session_state.image_data, caption="Uploaded Image", use_container_width=True)

# Display timer - update the display based on current state
current_time_str = get_formatted_timer()

if st.session_state.timer_frozen:
    timer_container.markdown(f"<div style='font-size:16px;color:#00cc00;font-weight:bold;margin-bottom:10px;'>⏱️ Elapsed: {current_time_str} βœ“</div>", unsafe_allow_html=True)
else:
    timer_container.markdown(f"<div style='font-size:16px;color:#666;margin-bottom:10px;'>⏱️ Elapsed: {current_time_str}</div>", unsafe_allow_html=True)

# Process new uploaded file
if uploaded_file is not None:
    # Save the image data to session state
    bytes_data = uploaded_file.getvalue()
    st.session_state.image_data = bytes_data
    
    # Display the image
    image_container.image(bytes_data, caption="Uploaded Image", use_container_width=True)
    
    if st.session_state.get('current_file') != uploaded_file.name:
        st.session_state.current_file = uploaded_file.name
        
        # Reset and start timer
        st.session_state.timer_start_time = time.time()
        st.session_state.last_update_time = time.time()
        st.session_state.timer_frozen = False
        
        # Progress indicators
        status_text = status_container.empty()
        progress_bar = progress_container.progress(0)
        
        try:
            # Save uploaded file
            with open(uploaded_file.name, "wb") as file:
                file.write(bytes_data)
                
            # Stage 1: Image to Text
            status_text.markdown("**πŸ–ΌοΈ Generating caption...**")
            progress_bar.progress(0)
            st.session_state.processed_data['scenario'] = img2text(uploaded_file.name)
            progress_bar.progress(33)
            
            # Stage 2: Text to Story
            status_text.markdown("**πŸ“– Generating story...**")
            progress_bar.progress(33)
            st.session_state.processed_data['story'] = text2story(
                st.session_state.processed_data['scenario']
            )
            progress_bar.progress(66)
            
            # Stage 3: Story to Audio
            status_text.markdown("**πŸ”Š Synthesizing audio...**")
            progress_bar.progress(66)
            st.session_state.processed_data['audio'] = text2audio(
                st.session_state.processed_data['story']
            )
            progress_bar.progress(100)
            
            # Final status
            status_text.success("**βœ… Generation complete!**")
            
            # Show results
            with results_container:
                st.write("**Caption:**", st.session_state.processed_data['scenario'])
                st.write("**Story:**", st.session_state.processed_data['story'])
                
        except Exception as e:
            status_text.error(f"**❌ Error:** {str(e)}")
            progress_bar.empty()
            raise e

# Display results if available
if st.session_state.processed_data.get('scenario'):
    with results_container:
        st.write("**Caption:**", st.session_state.processed_data['scenario'])

if st.session_state.processed_data.get('story'):
    with results_container:
        st.write("**Story:**", st.session_state.processed_data['story'])

# Audio playback - this will freeze the timer
if st.button("Play Audio of the Story Generated"):
    if st.session_state.processed_data.get('audio'):
        # Make sure the image is still displayed
        if st.session_state.image_data is not None:
            image_container.image(st.session_state.image_data, caption="Uploaded Image", use_container_width=True)
        
        # Freeze the timer
        st.session_state.timer_frozen = True
        
        # Update the timer display with frozen styling
        final_time = get_formatted_timer()
        timer_container.markdown(f"<div style='font-size:16px;color:#00cc00;font-weight:bold;margin-bottom:10px;'>⏱️ Elapsed: {final_time} βœ“</div>", unsafe_allow_html=True)
        
        # Play the audio
        audio_data = st.session_state.processed_data['audio']
        st.audio(
            audio_data['audio'].getvalue(),
            format="audio/mp3"
        )
    else:
        st.warning("Please generate a story first!")

# Force a rerun every second while the timer is active (not frozen)
if st.session_state.timer_start_time is not None and not st.session_state.timer_frozen:
    # Create a placeholder for our hidden component that triggers the rerun
    rerun_trigger = st.empty()
    
    # Add a hidden element that will automatically trigger a rerun after 0.5 seconds
    rerun_trigger.markdown(
        f"""
        <div style="display:none;">
        <script>
            setTimeout(function() {{
                window.parent.postMessage({{type: "streamlit:rerun"}}, "*");
            }}, 500);
        </script>
        </div>
        """,
        unsafe_allow_html=True
    )