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Auto Acquired Vehicle Valuation Model

This repository contains the final trained Random Forest model used by the Machine Learning Vehicle Valuation and Negotiation Support System.

Model File

random_forest_model.joblib

Installation

Download the model file and save it at:

C964_Capstone/models/random_forest_model.joblib

The filename must remain exactly:

random_forest_model.joblib

After placing the file in the models folder, open a terminal in the main C964_Capstone folder and run:

python main.py

The downloaded model allows menu option 1 to generate vehicle-value predictions without retraining the Random Forest model.

Model Details

  • Model type: Random Forest Regressor
  • Prediction target: sellingprice
  • Number of estimators: 100
  • Train-test split: 80/20
  • Random state: 42
  • Model version: 1.0

Only load this joblib file if it was downloaded from this official project repository.

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