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# app.py β BizIntelΒ AIΒ Ultra (Geminiβ―1.5Β Pro, CSVβ―+β―DB, interactive Plotly, pro summary) | |
import os | |
import tempfile | |
from io import StringIO | |
import pandas as pd | |
import streamlit as st | |
import google.generativeai as genai | |
import plotly.graph_objects as go | |
from tools.csv_parser import parse_csv_tool | |
from tools.plot_generator import plot_sales_tool | |
from tools.forecaster import forecast_tool | |
from tools.visuals import histogram_tool, scatter_matrix_tool, corr_heatmap_tool | |
from db_connector import fetch_data_from_db, list_tables, SUPPORTED_ENGINES | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 1. GEMINI CONFIG | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
genai.configure(api_key=os.getenv("GEMINI_APIKEY")) | |
gemini = genai.GenerativeModel( | |
"gemini-1.5-pro-latest", | |
generation_config={ | |
"temperature": 0.7, | |
"top_p": 0.9, | |
"response_mime_type": "text/plain", | |
}, | |
) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 2. PAGE SETUP | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
st.set_page_config(page_title="BizIntelΒ AIΒ Ultra", layout="wide") | |
st.title("π BizIntelΒ AIΒ UltraΒ β Advanced Analytics + GeminiΒ 1.5Β Pro") | |
TEMP_DIR = tempfile.gettempdir() | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 3. DATA SOURCE (CSV OR DB) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
source = st.radio("Select data source", ["Upload CSV", "Connect to SQL Database"]) | |
csv_path = None | |
if source == "Upload CSV": | |
up = st.file_uploader("Upload CSV (β€β―200β―MB)", type=["csv"]) | |
if up: | |
csv_path = os.path.join(TEMP_DIR, up.name) | |
with open(csv_path, "wb") as f: | |
f.write(up.read()) | |
st.success("CSV saved β ") | |
else: | |
engine = st.selectbox("DB engine", SUPPORTED_ENGINES) | |
conn = st.text_input("SQLAlchemy connection string") | |
if conn: | |
try: | |
tbls = list_tables(conn) | |
tbl = st.selectbox("Table", tbls) | |
if st.button("Fetch table"): | |
csv_path = fetch_data_from_db(conn, tbl) | |
st.success(f"Fetched **{tbl}** as CSV β ") | |
except Exception as e: | |
st.error(f"Connection failed: {e}") | |
st.stop() | |
if csv_path is None: | |
st.stop() | |
# Download original CSV | |
with open(csv_path, "rb") as f: | |
st.download_button("β¬οΈΒ Download original CSV", f, file_name=os.path.basename(csv_path)) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 4. PREVIEW & DATE COLUMN | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
df_preview = pd.read_csv(csv_path, nrows=5) | |
st.dataframe(df_preview) | |
date_col = st.selectbox("Select date/time column for forecasting", df_preview.columns) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 5. LOCAL TOOLS: SUMMARY, SALES TREND, FORECAST | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
with st.spinner("Parsing CSVβ¦"): | |
summary_text = parse_csv_tool(csv_path) | |
with st.spinner("Generating sales trendβ¦"): | |
sales_fig = plot_sales_tool(csv_path, date_col=date_col) | |
if isinstance(sales_fig, go.Figure): | |
st.plotly_chart(sales_fig, use_container_width=True) | |
else: | |
st.warning(sales_fig) | |
with st.spinner("Forecastingβ¦"): | |
forecast_text = forecast_tool(csv_path, date_col=date_col) | |
forecast_png = "forecast_plot.png" if os.path.exists("forecast_plot.png") else None | |
if forecast_png: | |
st.image(forecast_png, caption="Sales Forecast", use_container_width=True) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 6. GEMINI STRATEGY | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
prompt = ( | |
f"You are **BizIntel Strategist AI**.\n\n" | |
f"### CSV Summary\n```\n{summary_text}\n```\n\n" | |
f"### Forecast Output\n```\n{forecast_text}\n```\n\n" | |
"Return **Markdown** with:\n" | |
"1. Five key insights\n" | |
"2. Three actionable strategies (with expected impact)\n" | |
"3. Risk factors or anomalies\n" | |
"4. Suggested additional visuals\n" | |
) | |
st.subheader("π Strategy Recommendations (GeminiΒ 1.5Β Pro)") | |
with st.spinner("Generating insightsβ¦"): | |
strategy_md = gemini.generate_content(prompt).text | |
st.markdown(strategy_md) | |
st.download_button("β¬οΈΒ Download Strategy (.md)", strategy_md, file_name="strategy.md") | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 7. PROFESSIONAL CSV SUMMARY | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
st.markdown("---") | |
st.subheader("π CSV Overview") | |
full_df = pd.read_csv(csv_path) | |
total_rows = len(full_df) | |
num_cols = len(full_df.columns) | |
missing_pct = full_df.isna().mean().mean() * 100 | |
c1, c2, c3 = st.columns(3) | |
c1.metric("Rows", f"{total_rows:,}") | |
c2.metric("Columns", str(num_cols)) | |
c3.metric("MissingΒ %", f"{missing_pct:.1f}%") | |
with st.expander("πΒ Detailed descriptive statistics"): | |
stats_df = full_df.describe().T.reset_index().rename(columns={"index": "Feature"}) | |
st.dataframe( | |
stats_df.style.format(precision=2).background_gradient(cmap="Blues"), | |
use_container_width=True, | |
) | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
# 8. OPTIONAL EXPLORATORY VISUALS | |
# ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ | |
st.markdown("---") | |
st.subheader("π Optional Exploratory Visuals") | |
num_cols_only = df_preview.select_dtypes("number").columns | |
if st.checkbox("Histogram"): | |
hcol = st.selectbox("Variable", num_cols_only, key="hist") | |
st.plotly_chart(histogram_tool(csv_path, hcol), use_container_width=True) | |
if st.checkbox("Scatterβmatrix"): | |
sm_cols = st.multiselect("Choose up to 5 columns", num_cols_only, default=num_cols_only[:3]) | |
if sm_cols: | |
st.plotly_chart(scatter_matrix_tool(csv_path, sm_cols), use_container_width=True) | |
if st.checkbox("Correlation heatβmap"): | |
st.plotly_chart(corr_heatmap_tool(csv_path), use_container_width=True) | |