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Upload data_fetcher.py
Browse files- src/data_fetcher.py +48 -25
src/data_fetcher.py
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@@ -24,40 +24,63 @@ class DataFetcher:
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def fetch_market_data(self, days=50):
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"""
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Fetches
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Falls back to local CSV in the data/ folder if Yahoo blocks the server IP.
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"""
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print(f"📡 Attempting to fetch last {days} days
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try:
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# 1.
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#
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# If the dataframe is empty (Yahoo stealth-blocked us), force an error
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if df.empty:
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raise ValueError("
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return df
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except Exception as e:
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print(f"⚠️ Live fetch failed ({e}). Loading backup data from data/ folder...")
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# Load the CSV from your new data folder
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backup_path = "data/market_data_backup.csv"
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df_backup = pd.read_csv(backup_path, index_col=0, parse_dates=True)
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return df_backup.tail(days)
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# 🛡️ STREAMLIT CACHE: Ignores '_self' so it doesn't try to hash the Finnhub client.
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def fetch_market_data(self, days=50):
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"""
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Fetches market data using Finnhub (SPY as proxy) with a CSV fallback.
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"""
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print(f"📡 Attempting to fetch last {days} days from Finnhub (using SPY proxy)...")
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try:
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# 1. Setup Timestamps (Finnhub needs Unix seconds)
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end_ts = int(time.time())
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start_ts = int((datetime.now() - timedelta(days=days+10)).timestamp())
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# 2. Fetch SPY (S&P 500 Proxy)
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# '1' means daily candles
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res = self.finnhub_client.stock_candles('SPY', 'D', start_ts, end_ts)
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if res.get('s') != 'ok':
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raise ValueError(f"Finnhub API returned status: {res.get('s')}")
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# Convert Finnhub response to DataFrame
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df = pd.DataFrame({
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'Date': pd.to_datetime(res['t'], unit='s'),
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'Close': res['c'],
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'Open': res['o'],
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'High': res['h'],
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'Low': res['l'],
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'Volume': res['v']
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}).set_index('Date')
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# 3. Handle VIX (Finnhub free tier often blocks ^VIX)
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# We attempt it, but if it fails, we merge from our backup data
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try:
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vix_res = self.finnhub_client.stock_candles('VIX', 'D', start_ts, end_ts)
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if vix_res.get('s') == 'ok':
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df['VIX'] = vix_res['c']
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else:
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raise Exception("VIX not available on API")
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except:
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print("⚠️ VIX not available on Finnhub. Pulling VIX from backup...")
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backup_df = pd.read_csv("data/market_data_backup.csv", index_col=0, parse_dates=True)
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# Reindex backup to match the dates we just got from the API
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df['VIX'] = backup_df['VIX'].reindex(df.index, method='ffill')
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# Final cleanup
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df = df.ffill().dropna()
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if df.empty:
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raise ValueError("Resulting DataFrame is empty.")
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return df
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except Exception as e:
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print(f"⚠️ Finnhub fetch failed ({e}). Loading full backup from data/ folder...")
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backup_path = "data/market_data_backup.csv"
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if not os.path.exists(backup_path):
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print(f"🚨 FATAL: {backup_path} not found!")
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return pd.DataFrame() # This will trigger your safety check in Processor
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df_backup = pd.read_csv(backup_path, index_col=0, parse_dates=True)
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return df_backup.tail(days)
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# 🛡️ STREAMLIT CACHE: Ignores '_self' so it doesn't try to hash the Finnhub client.
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