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# --- START OF FILE main.py ---

# main.py
from fastapi import FastAPI, HTTPException
from fastapi.middleware.cors import CORSMiddleware
from pydantic import BaseModel
from typing import Optional, Any, Dict, List
import aiohttp
import os
from datetime import datetime, timezone
import json
import re
from google.oauth2.service_account import Credentials as ServiceAccountCredentials
from googleapiclient.discovery import build
from googleapiclient.errors import HttpError
from dotenv import load_dotenv
import asyncio
import logging

# --- Logging Setup ---
logging.basicConfig(level=logging.INFO, format='%(asctime)s - %(levelname)s - %(message)s')
logger = logging.getLogger(__name__)

app = FastAPI()

# --- Configuration ---
load_dotenv()

# CORS
app.add_middleware(
    CORSMiddleware,
    allow_origins=["*"], # Consider restricting in production
    allow_credentials=True,
    allow_methods=["*"],
    allow_headers=["*"],
)

# Google Sheets Config
# Spreadsheet containing Scammer and DWC info
SCAMMER_DWC_SPREADSHEET_ID = '1sgkhBNGw_r6tBIxvdeXaI0bVmWBeACN4jiw_oDEeXLw'
# Spreadsheet containing Value lists and Dupe list
VALUES_DUPE_SPREADSHEET_ID = '1Toe07o3P517q8sm9Qb1e5xyFWCuwgskj71IKJwJNfNU'

SCOPES = ['https://www.googleapis.com/auth/spreadsheets.readonly']

# Sheet Names and Ranges within SCAMMER_DWC_SPREADSHEET_ID
USER_SCAMMER_SHEET = "User Scammer Files"
USER_SCAMMER_RANGE = "B6:G"
SERVER_SCAMMER_SHEET = "Server Scammer Files"
SERVER_SCAMMER_RANGE = "B6:F"
DWC_SHEET = "DWC Servers / Users"
DWC_RANGE = "B6:G"

# Sheet Names and Ranges within VALUES_DUPE_SPREADSHEET_ID
DUPE_LIST_SHEET = "Dupe List"
DUPE_LIST_RANGE = "B2:B"
# Value Categories (Sheet Names)
CATEGORIES = [
    "Vehicles", "Textures", "Colours", "Spoilers",
    "Rims", "Furnitures", "Gun Skins", "Hyperchromes"
]
VALUES_RANGE = 'B6:P' # Range within each category sheet

# Cache Update Interval
CACHE_UPDATE_INTERVAL_SECONDS = 60 * 5 # 5 minutes

# --- Global Cache ---
cache = {
    "values": {},             # Dict mapping category name to list of items
    "value_changes": {},      # Dict mapping category name to list of changes
    "user_scammers": [],
    "server_scammers": [],
    "dwc": [],
    "dupes": [],              # List of duped usernames
    "last_updated": None,     # Timestamp of the last successful/partial update
    "is_ready": False,        # Is the cache populated at least once?
    "service_available": True # Is the Google Sheets service reachable?
}
# --- Google Sheets Initialization ---
sheets_service = None # Initialize as None

def quote_sheet_name(name: str) -> str:
    """Adds single quotes around a sheet name if it needs them."""
    if not name:
        return "''"
    # Simple check: if it contains spaces or non-alphanumeric chars (excluding _)
    if not re.match(r"^[a-zA-Z0-9_]+$", name):
        # Escape existing single quotes within the name
        escaped_name = name.replace("'", "''")
        return f"'{escaped_name}'"
    return name

def init_google_sheets(scopes=SCOPES):
    """Initialize Google Sheets credentials from environment variable"""
    global sheets_service, cache
    try:
        creds_json_str = os.getenv('CREDENTIALS_JSON')
        if not creds_json_str:
            logger.error("CREDENTIALS_JSON environment variable not found")
            raise ValueError("CREDENTIALS_JSON environment variable not found")
        creds_json = json.loads(creds_json_str)
        creds = ServiceAccountCredentials.from_service_account_info(
            creds_json,
            scopes=scopes
        )
        sheets_service = build('sheets', 'v4', credentials=creds, cache_discovery=False) # Disable discovery cache
        logger.info("Google Sheets service initialized successfully from ENV VAR.")
        cache["service_available"] = True
        return sheets_service
    except Exception as e:
        logger.error(f"Error initializing Google Sheets from ENV VAR: {e}")
        # Fallback attempt
        try:
            logger.info("Falling back to loading credentials from file 'credentials.json'")
            creds = ServiceAccountCredentials.from_service_account_file(
                'credentials.json',
                scopes=scopes
            )
            sheets_service = build('sheets', 'v4', credentials=creds, cache_discovery=False)
            logger.info("Google Sheets service initialized successfully from file.")
            cache["service_available"] = True
            return sheets_service
        except Exception as file_e:
            logger.error(f"Error loading credentials from file: {file_e}")
            logger.critical("Google Sheets service could not be initialized. API will be limited.")
            cache["service_available"] = False
            sheets_service = None
            return None

# Initialize on module load
init_google_sheets()


# --- Helper Functions (Data Extraction & Formatting) ---

def extract_drive_id(url):
    if not url or not isinstance(url, str): return None
    match = re.search(r'https://drive\.google\.com/file/d/([^/]+)', url)
    return match.group(1) if match else None

def convert_to_thumbnail_url(drive_url):
    drive_id = extract_drive_id(drive_url)
    return f"https://drive.google.com/thumbnail?id={drive_id}&sz=w1000" if drive_id else drive_url

def extract_image_url(formula, drive_url=None):
    # Priority to explicit drive_url if provided
    if drive_url and isinstance(drive_url, str) and 'drive.google.com' in drive_url:
        return convert_to_thumbnail_url(drive_url)
    if not formula or not isinstance(formula, str): return ''
    # Handle direct URLs
    if formula.startswith('http://') or formula.startswith('https://'):
        return formula
    # Handle =IMAGE("...") formula
    if formula.startswith('=IMAGE('):
        match = re.search(r'=IMAGE\("([^"]+)"', formula)
        if match: return match.group(1)
    # If it wasn't a formula or direct URL, and no drive_url, return empty or original?
    # Let's assume if it's not a recognizable URL/formula, it's not an image source.
    return '' # Return empty string if no valid URL found

def format_currency(value: Any) -> Optional[str]:
    if value is None or str(value).strip() == '': return 'N/A'
    try:
        num_str = str(value).replace('$', '').replace(',', '').strip()
        if not num_str or num_str.lower() == 'n/a': return 'N/A'
        num = float(num_str)
        return f"${num:,.0f}"
    except (ValueError, TypeError):
        if isinstance(value, str) and not re.match(r'^-?[\d,.$]+\$?$', value.strip()):
             return value.strip() # Return original text if non-numeric-like
        return 'N/A'

def parse_cached_currency(value_str: Optional[str]) -> Optional[float]:
    if value_str is None or value_str is None or str(value_str).strip().lower() == 'n/a':
        return None
    try:
        num_str = str(value_str).replace('$', '').replace(',', '').strip()
        return float(num_str)
    except (ValueError, TypeError):
        return None

def clean_string(value, default='N/A'):
    if value is None: return default
    cleaned = str(value).strip()
    return cleaned if cleaned else default

def clean_string_optional(value):
    if value is None: return None
    cleaned = str(value).strip()
    return cleaned if cleaned and cleaned != '-' else None

def parse_alt_accounts(value):
    if value is None: return []
    raw_string = str(value).strip()
    if not raw_string or raw_string == '-': return []
    return [acc.strip() for acc in raw_string.split(',') if acc.strip()]


# --- Roblox API Helpers (Unchanged) ---
async def get_roblox_user_id(session: aiohttp.ClientSession, username: str):
    if not username: return None
    url = "https://users.roblox.com/v1/usernames/users"
    payload = {"usernames": [username], "excludeBannedUsers": False}
    try:
        async with session.post(url, json=payload) as response:
            if response.status == 200:
                data = await response.json()
                if data and data.get("data") and len(data["data"]) > 0:
                    return data["data"][0].get("id")
            return None
    except asyncio.TimeoutError:
        logger.warning(f"Timeout fetching Roblox User ID for {username}")
        return None
    except aiohttp.ClientError as e:
        logger.warning(f"Network error fetching Roblox User ID for {username}: {e}")
        return None
    except Exception as e:
        logger.error(f"Unexpected exception fetching Roblox User ID for {username}: {e}")
        return None

async def get_roblox_avatar_url(session: aiohttp.ClientSession, user_id: int):
    if not user_id: return None
    url = f"https://thumbnails.roblox.com/v1/users/avatar-headshot?userIds={user_id}&size=150x150&format=Png&isCircular=false"
    try:
        async with session.get(url) as response:
            if response.status == 200:
                data = await response.json()
                if data and data.get("data") and len(data["data"]) > 0:
                    return data["data"][0].get("imageUrl")
            return None
    except asyncio.TimeoutError:
        logger.warning(f"Timeout fetching Roblox avatar for User ID {user_id}")
        return None
    except aiohttp.ClientError as e:
        logger.warning(f"Network error fetching Roblox avatar for User ID {user_id}: {e}")
        return None
    except Exception as e:
        logger.error(f"Unexpected exception fetching Roblox avatar for User ID {user_id}: {e}")
        return None


# --- Data Processing Functions ---
# These functions take raw rows from the sheet and process them.
# They are now independent of *which* sheet they came from, as long as the structure matches.

def process_sheet_data(values): # For Value Categories
    if not values: return []
    processed_data = []
    for row in values: # Expected range like B6:P
        if not row or not any(str(cell).strip() for cell in row if cell is not None): continue

        # Indices based on B6:P (0-indexed from B)
        # B=0, C=1, D=2, E=3, F=4, G=5, H=6, I=7, J=8, K=9, L=10, M=11, N=12, O=13, P=14
        icon_formula = row[0] if len(row) > 0 else ''
        name = row[2] if len(row) > 2 else 'N/A'
        value_raw = row[4] if len(row) > 4 else 'N/A'
        duped_value_raw = row[6] if len(row) > 6 else 'N/A'
        market_value_raw = row[8] if len(row) > 8 else 'N/A'
        demand = row[10] if len(row) > 10 else 'N/A'
        notes = row[12] if len(row) > 12 else ''
        drive_url = row[14] if len(row) > 14 else None # Column P

        # Skip header-like rows (e.g., "LEVEL 1 | HYPERCHROMES" in column F/index 4)
        if len(row) > 4 and isinstance(row[4], str) and re.search(r'LEVEL \d+ \|', row[4]):
            continue
        if clean_string(name) == 'N/A':
            continue

        processed_item = {
            'icon': extract_image_url(icon_formula, drive_url),
            'name': clean_string(name, 'N/A'),
            'value': format_currency(value_raw),
            'dupedValue': format_currency(duped_value_raw),
            'marketValue': format_currency(market_value_raw),
            'demand': clean_string(demand, 'N/A'),
            'notes': clean_string(notes, '')
        }
        processed_data.append(processed_item)
    return processed_data

def process_user_scammer_data(values): # For User Scammer Sheet
    if not values: return []
    processed_data = []
    for row in values: # Expected range like B6:G
        if not row or len(row) < 2: continue
        # Indices based on B6:G (0-indexed from B)
        # B=0, C=1, D=2, E=3, F=4, G=5
        discord_id = clean_string_optional(row[0]) if len(row) > 0 else None # Col B
        roblox_username = clean_string_optional(row[1]) if len(row) > 1 else None # Col C
        if not discord_id and not roblox_username: continue
        processed_item = {
            'discord_id': discord_id,
            'roblox_username': roblox_username,
            'scam_type': clean_string(row[2]) if len(row) > 2 else 'N/A', # Col D
            'explanation': clean_string(row[3]) if len(row) > 3 else 'N/A', # Col E
            'evidence_link': clean_string_optional(row[4]) if len(row) > 4 else None, # Col F
            'alt_accounts': parse_alt_accounts(row[5]) if len(row) > 5 else [], # Col G
            'roblox_avatar_url': None
        }
        processed_data.append(processed_item)
    return processed_data

def process_server_scammer_data(values): # For Server Scammer Sheet
    if not values: return []
    processed_data = []
    for row in values: # Expected range like B6:F
        if not row or len(row) < 2: continue
        # Indices based on B6:F (0-indexed from B)
        # B=0, C=1, D=2, E=3, F=4
        server_id = clean_string_optional(row[0]) if len(row) > 0 else None # Col B
        server_name = clean_string_optional(row[1]) if len(row) > 1 else None # Col C
        if not server_id and not server_name: continue
        processed_item = {
            'server_id': server_id,
            'server_name': server_name,
            'scam_type': clean_string(row[2]) if len(row) > 2 else 'N/A', # Col D
            'explanation': clean_string(row[3]) if len(row) > 3 else 'N/A', # Col E
            'evidence_link': clean_string_optional(row[4]) if len(row) > 4 else None # Col F
        }
        processed_data.append(processed_item)
    return processed_data

def process_dwc_data(values): # For DWC Sheet
    if not values: return []
    processed_data = []
    for row in values: # Expected range like B6:G
        if not row or len(row) < 3: continue
        # Indices based on B6:G (0-indexed from B)
        # B=0, C=1, D=2, E=3, F=4, G=5
        user_id = clean_string_optional(row[0]) if len(row) > 0 else None # Col B
        server_id = clean_string_optional(row[1]) if len(row) > 1 else None # Col C
        roblox_user = clean_string_optional(row[2]) if len(row) > 2 else None # Col D
        if not user_id and not server_id and not roblox_user: continue
        processed_item = {
            'status': 'DWC',
            'discord_user_id': user_id,
            'discord_server_id': server_id,
            'roblox_username': roblox_user,
            'explanation': clean_string(row[3]) if len(row) > 3 else 'N/A', # Col E
            'evidence_link': clean_string_optional(row[4]) if len(row) > 4 else None, # Col F
            'alt_accounts': parse_alt_accounts(row[5]) if len(row) > 5 else [], # Col G
            'roblox_avatar_url': None
        }
        processed_data.append(processed_item)
    return processed_data

def process_dupe_list_data(values): # For Dupe List Sheet
    if not values: return []
    # Expected range like B2:B
    return [row[0].strip().lower() for row in values if row and len(row)>0 and row[0] and isinstance(row[0], str) and row[0].strip()]


# --- Async Fetching Functions ---

async def fetch_batch_ranges_async(spreadsheet_id: str, ranges: List[str], value_render_option: str = 'FORMATTED_VALUE') -> List[Dict]:
    """Async wrapper to fetch multiple ranges using batchGet and return raw valueRanges."""
    global sheets_service
    if not sheets_service:
        logger.warning(f"Attempted batch fetch from {spreadsheet_id} but Sheets service is unavailable.")
        raise Exception("Google Sheets service not initialized")
    if not ranges:
        logger.warning(f"Batch fetch called with empty ranges for {spreadsheet_id}.")
        return []

    try:
        logger.info(f"Fetching batch ranges from {spreadsheet_id}: {ranges}")
        loop = asyncio.get_event_loop()
        result = await loop.run_in_executor(
            None,
            lambda: sheets_service.spreadsheets().values().batchGet(
                spreadsheetId=spreadsheet_id,
                ranges=ranges,
                valueRenderOption=value_render_option,
                majorDimension='ROWS'
            ).execute()
        )
        value_ranges = result.get('valueRanges', [])
        logger.info(f"Successfully fetched batch data for {len(value_ranges)} ranges from {spreadsheet_id}.")
        return value_ranges # Return the raw list of valueRange objects

    except HttpError as e:
        error_details = json.loads(e.content).get('error', {})
        status = error_details.get('status')
        message = error_details.get('message')
        logger.error(f"Google API HTTP Error during batch fetch for {spreadsheet_id}: Status={status}, Message={message}")
        raise e
    except Exception as e:
        logger.error(f"Error during batch fetching from {spreadsheet_id} for ranges {ranges}: {e}")
        raise e

# --- Background Cache Update Task (Refactored for Batching per Spreadsheet) ---

async def update_cache_periodically():
    """Fetches data using batchGet per spreadsheet, processes, detects changes, and updates cache."""
    global cache
    async with aiohttp.ClientSession(timeout=aiohttp.ClientTimeout(total=25)) as session: # Slightly longer timeout
        while True:
            if not cache["service_available"]:
                logger.info("Attempting to re-initialize Google Sheets service...")
                init_google_sheets()
                if not cache["service_available"]:
                    logger.warning("Google Sheets service still unavailable, skipping cache update cycle.")
                    await asyncio.sleep(CACHE_UPDATE_INTERVAL_SECONDS * 2)
                    continue
                else:
                    logger.info("Google Sheets service re-initialized. Proceeding with cache update.")

            logger.info("Starting cache update cycle...")
            start_time = datetime.now(timezone.utc)

            # Prepare temporary storage for fetched data
            fetched_values_categories = {} # { "CategoryName": [items...] }
            new_cache_data = {
                "user_scammers": [],
                "server_scammers": [],
                "dwc": [],
                "dupes": [],
            }
            current_errors = {} # Track errors for specific fetches/sheets

            try:
                # --- Define Ranges and Processors ---
                # Scammer/DWC Spreadsheet
                scammer_dwc_ranges = [
                    f"{quote_sheet_name(USER_SCAMMER_SHEET)}!{USER_SCAMMER_RANGE}",
                    f"{quote_sheet_name(SERVER_SCAMMER_SHEET)}!{SERVER_SCAMMER_RANGE}",
                    f"{quote_sheet_name(DWC_SHEET)}!{DWC_RANGE}",
                ]
                scammer_dwc_processor_map = {
                    USER_SCAMMER_SHEET: process_user_scammer_data,
                    SERVER_SCAMMER_SHEET: process_server_scammer_data,
                    DWC_SHEET: process_dwc_data,
                }
                scammer_dwc_target_key_map = { # Map sheet name to cache key
                    USER_SCAMMER_SHEET: "user_scammers",
                    SERVER_SCAMMER_SHEET: "server_scammers",
                    DWC_SHEET: "dwc",
                }

                # Values/Dupes Spreadsheet
                values_dupes_ranges = [f"{quote_sheet_name(DUPE_LIST_SHEET)}!{DUPE_LIST_RANGE}"]
                values_dupes_ranges.extend([f"{quote_sheet_name(cat)}!{VALUES_RANGE}" for cat in CATEGORIES])

                # --- Define Fetch Tasks ---
                fetch_tasks = {
                    "scammer_dwc_batch": fetch_batch_ranges_async(
                        SCAMMER_DWC_SPREADSHEET_ID,
                        scammer_dwc_ranges,
                        value_render_option='FORMATTED_VALUE' # These don't need formulas
                    ),
                    "values_dupes_batch": fetch_batch_ranges_async(
                        VALUES_DUPE_SPREADSHEET_ID,
                        values_dupes_ranges,
                        value_render_option='FORMULA' # Need formula for IMAGE() in values
                    )
                }

                # --- Execute Tasks Concurrently ---
                results = await asyncio.gather(*fetch_tasks.values(), return_exceptions=True)
                task_keys = list(fetch_tasks.keys())

                # --- Process Results ---
                raw_scammer_dwc_results = None
                raw_values_dupes_results = None

                for i, result in enumerate(results):
                    key = task_keys[i]
                    if isinstance(result, Exception):
                        logger.error(f"Failed to fetch batch data for {key}: {result}")
                        current_errors[key] = str(result)
                    else:
                        # Store the raw valueRanges list
                        if key == "scammer_dwc_batch":
                            raw_scammer_dwc_results = result
                        elif key == "values_dupes_batch":
                            raw_values_dupes_results = result

                # --- Process Scammer/DWC Results ---
                if raw_scammer_dwc_results is not None:
                    logger.info(f"Processing {len(raw_scammer_dwc_results)} valueRanges from Scammer/DWC sheet...")
                    for vr in raw_scammer_dwc_results:
                        range_str = vr.get('range', '')
                        # Extract sheet name (handle quotes)
                        match = re.match(r"^'?([^'!]+)'?!", range_str)
                        if not match:
                            logger.warning(f"Could not extract sheet name from range '{range_str}' in Scammer/DWC response.")
                            continue
                        sheet_name = match.group(1).replace("''", "'") # Unescape quotes

                        if sheet_name in scammer_dwc_processor_map:
                            processor = scammer_dwc_processor_map[sheet_name]
                            target_key = scammer_dwc_target_key_map[sheet_name]
                            values = vr.get('values', [])
                            try:
                                processed_data = processor(values)
                                new_cache_data[target_key] = processed_data
                                logger.info(f"Processed {len(processed_data)} items for {sheet_name} -> {target_key}")
                            except Exception as e:
                                logger.error(f"Error processing data for {sheet_name} using {processor.__name__}: {e}", exc_info=True)
                                current_errors[f"process_{target_key}"] = str(e)
                        else:
                            logger.warning(f"No processor found for sheet name '{sheet_name}' derived from range '{range_str}' in Scammer/DWC sheet.")

                # --- Process Values/Dupes Results ---
                if raw_values_dupes_results is not None:
                    logger.info(f"Processing {len(raw_values_dupes_results)} valueRanges from Values/Dupes sheet...")
                    for vr in raw_values_dupes_results:
                        range_str = vr.get('range', '')
                        match = re.match(r"^'?([^'!]+)'?!", range_str)
                        if not match:
                            logger.warning(f"Could not extract sheet name from range '{range_str}' in Values/Dupes response.")
                            continue
                        sheet_name = match.group(1).replace("''", "'")

                        values = vr.get('values', [])
                        try:
                            if sheet_name == DUPE_LIST_SHEET:
                                processed_data = process_dupe_list_data(values)
                                new_cache_data["dupes"] = processed_data
                                logger.info(f"Processed {len(processed_data)} items for {DUPE_LIST_SHEET} -> dupes")
                            elif sheet_name in CATEGORIES:
                                processed_data = process_sheet_data(values)
                                fetched_values_categories[sheet_name] = processed_data
                                logger.info(f"Processed {len(processed_data)} items for Category: {sheet_name}")
                            else:
                                logger.warning(f"Unrecognized sheet name '{sheet_name}' derived from range '{range_str}' in Values/Dupes sheet.")
                        except Exception as e:
                            target_key = "dupes" if sheet_name == DUPE_LIST_SHEET else f"values_{sheet_name}"
                            logger.error(f"Error processing data for {sheet_name}: {e}", exc_info=True)
                            current_errors[f"process_{target_key}"] = str(e)

                # --- Detect Value Changes ---
                logger.info("Comparing fetched values with cached values...")
                current_time = datetime.now(timezone.utc)
                detected_value_changes = {}
                fields_to_compare = ['value', 'dupedValue', 'marketValue']

                if "values" not in cache: cache["values"] = {} # Ensure exists

                for category, new_items in fetched_values_categories.items():
                    old_items_dict = {item['name']: item for item in cache["values"].get(category, [])}
                    category_changes = []

                    for new_item in new_items:
                        item_name = new_item.get('name')
                        if not item_name or item_name == 'N/A': continue

                        old_item = old_items_dict.get(item_name)
                        if old_item: # Check existing item for changes
                            for field in fields_to_compare:
                                old_val_str = old_item.get(field, 'N/A')
                                new_val_str = new_item.get(field, 'N/A')
                                old_norm = parse_cached_currency(old_val_str) if parse_cached_currency(old_val_str) is not None else old_val_str
                                new_norm = parse_cached_currency(new_val_str) if parse_cached_currency(new_val_str) is not None else new_val_str

                                if old_norm != new_norm:
                                    logger.info(f"Change detected in {category}: {item_name} - {field}: '{old_val_str}' -> '{new_val_str}'")
                                    category_changes.append({
                                        "item_name": item_name, "field": field,
                                        "old_value": old_val_str if old_val_str is not None else "N/A",
                                        "new_value": new_val_str if new_val_str is not None else "N/A",
                                        "timestamp": current_time.isoformat()
                                    })
                    if category_changes:
                        detected_value_changes[category] = category_changes

                # --- Fetch Roblox Avatars ---
                logger.info("Fetching Roblox avatars...")
                avatar_tasks = []
                # Combine lists needing avatars (only user scammers and DWC have roblox usernames)
                entries_needing_avatars = new_cache_data.get("user_scammers", []) + new_cache_data.get("dwc", [])
                for entry in entries_needing_avatars:
                     if entry.get('roblox_username'):
                         # Pass the specific entry dict to the update function
                         avatar_tasks.append(fetch_avatar_for_entry_update(session, entry))
                if avatar_tasks:
                    await asyncio.gather(*avatar_tasks) # Exceptions logged within helper
                logger.info(f"Finished fetching avatars for {len(avatar_tasks)} potential entries.")


                # --- Final Cache Update ---
                update_occurred = False
                if not current_errors: # Perfect cycle
                    logger.info("Updating full cache (no errors during fetch or processing).")
                    cache["values"] = fetched_values_categories
                    cache["user_scammers"] = new_cache_data["user_scammers"]
                    cache["server_scammers"] = new_cache_data["server_scammers"]
                    cache["dwc"] = new_cache_data["dwc"]
                    cache["dupes"] = new_cache_data["dupes"]
                    cache["value_changes"] = detected_value_changes
                    cache["last_updated"] = current_time
                    cache["is_ready"] = True
                    update_occurred = True
                    logger.info(f"Cache update cycle completed successfully.")
                else: # Errors occurred, attempt partial update
                    logger.warning(f"Cache update cycle completed with errors: {current_errors}. Attempting partial update.")
                    partial_update_details = []

                    # Update values only if the values/dupes batch succeeded AND processing succeeded
                    if "values_dupes_batch" not in current_errors and not any(k.startswith("process_values_") for k in current_errors):
                        if cache["values"] != fetched_values_categories:
                            cache["values"] = fetched_values_categories
                            cache["value_changes"] = detected_value_changes # Update changes along with values
                            partial_update_details.append("values")
                            update_occurred = True

                    # Update dupes only if the values/dupes batch succeeded AND processing succeeded
                    if "values_dupes_batch" not in current_errors and "process_dupes" not in current_errors:
                         if cache["dupes"] != new_cache_data["dupes"]:
                            cache["dupes"] = new_cache_data["dupes"]
                            partial_update_details.append("dupes")
                            update_occurred = True

                    # Update scammer/DWC sections if their batch succeeded AND processing succeeded
                    if "scammer_dwc_batch" not in current_errors:
                        for key in ["user_scammers", "server_scammers", "dwc"]:
                            process_error_key = f"process_{key}"
                            if process_error_key not in current_errors:
                                 if cache[key] != new_cache_data[key]:
                                    cache[key] = new_cache_data[key]
                                    partial_update_details.append(key)
                                    update_occurred = True

                    if update_occurred:
                         cache["last_updated"] = current_time # Mark partial update time
                         cache["is_ready"] = True # Allow access even if partial
                         logger.info(f"Partially updated cache sections: {', '.join(partial_update_details)}")
                    else:
                         logger.error(f"Cache update cycle failed, and no parts could be updated based on errors. Errors: {current_errors}")
                         # Keep cache["is_ready"] as it was.

            except Exception as e:
                logger.exception(f"Critical error during cache update cycle: {e}")
                if isinstance(e, (aiohttp.ClientError, HttpError, asyncio.TimeoutError)):
                    logger.warning("Communication error detected, will re-check service availability next cycle.")

            # --- Wait for the next cycle ---
            end_time = datetime.now(timezone.utc)
            duration = (end_time - start_time).total_seconds()
            wait_time = max(10, CACHE_UPDATE_INTERVAL_SECONDS - duration)
            logger.info(f"Cache update cycle duration: {duration:.2f}s. Waiting {wait_time:.2f}s for next cycle.")
            await asyncio.sleep(wait_time)


async def fetch_avatar_for_entry_update(session: aiohttp.ClientSession, entry: dict):
    """Fetches avatar and updates the provided entry dictionary IN PLACE."""
    roblox_username = entry.get('roblox_username')
    if not roblox_username: return

    current_avatar = entry.get('roblox_avatar_url')
    new_avatar = None # Default to None

    try:
        user_id = await get_roblox_user_id(session, roblox_username)
        if user_id:
            new_avatar = await get_roblox_avatar_url(session, user_id)

    except Exception as e:
        # Log errors but don't stop the main update loop
        logger.warning(f"Failed to fetch avatar for {roblox_username}: {e}")
        # Keep new_avatar as None on error

    finally:
         # Update the dict only if the value has actually changed
         if current_avatar != new_avatar:
             entry['roblox_avatar_url'] = new_avatar


# --- FastAPI Startup Event ---
@app.on_event("startup")
async def startup_event():
    """Starts the background cache update task."""
    if not cache["service_available"]:
         logger.warning("Google Sheets service not available at startup. Will attempt re-init in background task.")
    logger.info("Starting background cache update task...")
    asyncio.create_task(update_cache_periodically())


# --- API Endpoints (Largely unchanged, rely on cache state) ---

def check_cache_readiness():
    """Reusable check for API endpoints - Checks cache readiness"""
    if not cache["is_ready"]:
         raise HTTPException(status_code=503, detail="Cache is initializing or data is currently unavailable. Please try again shortly.")

@app.get("/")
async def root():
    return {"message": "JB Vanta API - Running"}

@app.get("/api/status")
async def get_status():
    """Returns the current status of the cache and service availability"""
    return {
        "cache_ready": cache["is_ready"],
        "sheets_service_available": cache["service_available"],
        "last_updated": cache["last_updated"].isoformat() if cache["last_updated"] else None,
        "cached_items": {
            "value_categories": len(cache["values"]),
            "user_scammers": len(cache["user_scammers"]),
            "server_scammers": len(cache["server_scammers"]),
            "dwc_entries": len(cache["dwc"]),
            "duped_usernames": len(cache["dupes"]),
        },
         "value_change_categories": len(cache.get("value_changes", {}))
    }

@app.get("/api/values")
async def get_values():
    """Get all values data from cache"""
    check_cache_readiness()
    return cache["values"]

@app.get("/api/values/{category}")
async def get_category_values(category: str):
    """Get values data for a specific category from cache"""
    check_cache_readiness()
    matched_category = next((c for c in CATEGORIES if c.lower() == category.lower()), None)
    if not matched_category:
         raise HTTPException(status_code=404, detail=f"Category '{category}' not found.")
    return {matched_category: cache["values"].get(matched_category, [])}

@app.get("/api/value-changes/{category}")
async def get_category_value_changes(category: str):
    """Get detected value changes for a specific category."""
    check_cache_readiness()
    matched_category = next((c for c in CATEGORIES if c.lower() == category.lower()), None)
    if not matched_category:
         raise HTTPException(status_code=404, detail=f"Category '{category}' not found.")
    return {matched_category: cache.get("value_changes", {}).get(matched_category, [])}

@app.get("/api/value-changes")
async def get_all_value_changes():
    """Get all detected value changes from the last cycle."""
    check_cache_readiness()
    return cache.get("value_changes", {})

@app.get("/api/scammers")
async def get_scammers():
    """Get all scammer and DWC data (users, servers, dwc) from cache"""
    check_cache_readiness()
    return {
        "users": cache["user_scammers"],
        "servers": cache["server_scammers"],
        "dwc": cache["dwc"]
    }

@app.get("/api/dupes")
async def get_dupes():
    """Get all duped usernames from cache"""
    check_cache_readiness()
    # Handle case where dupes might be None temporarily during init failure
    return {"usernames": cache.get("dupes") or []}


class UsernameCheck(BaseModel):
    username: str

@app.post("/api/check")
async def check_username(data: UsernameCheck):
    """Check if a username is duped using cached data and send webhook"""
    check_cache_readiness() # Use the standard readiness check

    username_to_check = data.username.strip().lower()
    is_duped = username_to_check in (cache.get("dupes") or [])

    # Webhook notification (runs in background)
    if not is_duped:
        webhook_url = os.getenv("WEBHOOK_URL")
        if webhook_url:
            async def send_webhook_notification():
                try:
                    async with aiohttp.ClientSession() as session:
                        webhook_data = {
                            "content": None,
                            "embeds": [{
                                "title": "New Dupe Check - Not Found",
                                "description": f"Username `{data.username}` was checked but not found in the dupe database.",
                                "color": 16776960, # Yellow
                                "timestamp": datetime.now(timezone.utc).isoformat()
                            }]
                        }
                        async with session.post(webhook_url, json=webhook_data) as response:
                            if response.status not in [200, 204]:
                                logger.warning(f"Failed to send webhook (Status: {response.status}): {await response.text()}")
                except Exception as e:
                    logger.error(f"Error sending webhook: {e}")
            asyncio.create_task(send_webhook_notification())
        else:
            logger.info("Webhook URL not configured. Skipping notification.")

    return {"username": data.username, "is_duped": is_duped}


@app.get("/health")
def health_check():
    """Provides a health status of the API and its cache."""
    if not cache["is_ready"]:
        return {"status": "initializing"}
    if not cache["service_available"]:
        return {"status": "degraded", "reason": "Sheets service connection issue"}
    if cache["last_updated"] and (datetime.now(timezone.utc) - cache["last_updated"]).total_seconds() > CACHE_UPDATE_INTERVAL_SECONDS * 3:
         return {"status": "degraded", "reason": "Cache potentially stale (last update > 3 intervals ago)"}
    return {"status": "ok"}

# --- END OF FILE main.py ---