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randomforestclassifier

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This pipeline provides a way to perform pharmaceutical compounds virtual screening using similarity-based analysis, ligand-based and structure-based techniques. The pipeline contains a collections of modules to perform a variety of analysis.

  • Updated Aug 14, 2023
  • Jupyter Notebook

Modello Random Forest per la creazione di una mappa di suscettibilità da frane superficiali // // Tesi di Laurea Magistrale in Scienze della Terra (Geologia Applicata) - Università degli Studi di Milano

  • Updated Apr 27, 2021
  • Python

A machine learning pipeline for classifying cybersecurity incidents as True Positive(TP), Benign Positive(BP), or False Positive(FP) using the Microsoft GUIDE dataset. Features advanced preprocessing, XGBoost optimization, SMOTE, SHAP analysis, and deployment-ready models. Tools: Python, scikit-learn, XGBoost, LightGBM, SHAP and imbalanced-learn

  • Updated Nov 27, 2024
  • Jupyter Notebook

This project develops an activity recognition model for a mobile fitness app using statistical analysis and machine learning. By processing smartphone sensor data, it extracts features to train models that accurately recognize user activities.

  • Updated Aug 6, 2024
  • Jupyter Notebook

Machine learning project for predicting customer churn based on user behavior, contract type, and monthly charges. Includes preprocessing, model training, and evaluation. /// Проект по предсказанию оттока клиентов телеком-компании на основе их контрактов, активности и платежей.

  • Updated Jul 15, 2025
  • Jupyter Notebook

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