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| import streamlit as st | |
| import pandas as pd | |
| from huggingface_hub import hf_hub_download | |
| import joblib | |
| # Download the model from Hugging Face | |
| model_path = hf_hub_download( | |
| repo_id="Anusha3/ab_predictive_maintenance", | |
| filename="Gradient_Boosting.joblib" | |
| ) | |
| # Load model | |
| model = joblib.load(model_path) | |
| # Page config | |
| st.set_page_config(page_title="Predictive Maintenance - Engine Failure") | |
| st.title("Engine Predictive Maintenance System") | |
| st.write("Enter engine parameters below to predict engine condition.") | |
| # ---------------------------- | |
| # Input Features (MATCH TRAINING FEATURES EXACTLY) | |
| # ---------------------------- | |
| engine_rpm = st.number_input("Engine RPM", value=1500) | |
| lub_oil_pressure = st.number_input("Lub Oil Pressure", value=3.0) | |
| fuel_pressure = st.number_input("Fuel Pressure", value=5.0) | |
| coolant_pressure = st.number_input("Coolant Pressure", value=2.0) | |
| lub_oil_temp = st.number_input("Lub Oil Temperature", value=80.0) | |
| coolant_temp = st.number_input("Coolant Temperature", value=75.0) | |
| # ---------------------------- | |
| # Prepare Input DataFrame | |
| # ---------------------------- | |
| input_data = pd.DataFrame([{ | |
| "Engine rpm": engine_rpm, | |
| "Lub oil pressure": lub_oil_pressure, | |
| "Fuel pressure": fuel_pressure, | |
| "Coolant pressure": coolant_pressure, | |
| "lub oil temp": lub_oil_temp, | |
| "Coolant temp": coolant_temp | |
| }]) | |
| # ---------------------------- | |
| # Prediction | |
| # ---------------------------- | |
| if st.button("Predict Engine Condition"): | |
| prediction = model.predict(input_data)[0] | |
| if prediction == 1: | |
| st.error("🚨 Engine Failure Likely. Immediate Maintenance Required!") | |
| else: | |
| st.success("✅ Engine Operating Normally.") | |