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A curated list of gradient boosting research papers with implementations.
Tree based algorithm in machine learning including both theory and codes. Topics including from decision tree regression and classification to random forest tree and classification. Grid Search is also included.
Solution for ENS - Societe Generale Challenge (1st place).
Customer Churn Analysis in R: Logistic, Classification Tree, XGBoost, Random Forest.
Building a binary classification model to determine whether or not an employee in the tech industry chooses to seek treatment for a mental health condition
KNN Algorithms, Naive Bayes, Classification Tree, PCA Implementations
Built and tested 6 supervised machine learning algorithm to develop a predictive classification model to classify 13000+ projects as success or failure.
Recursive Partitioning and Regression Trees adapted to Random Forests with more split functions
evaluating credit default rate using statistical machine learning methods
R | Classification Project
factor selection, exploratory data analysis, statistical learning on both qualitative and quantitative data in R
Exploratory data analysis and classification tree algorithm (sklearn).
In this report, the goal is to predict Attrition by selecting a set of explanatory variables and building a random forest classification tree.
Compilación de trabajos realizados en la asignatura de Machine Learning con Python
Exemplo de aprendizagem de máquina por K-ésimo Vizinho mais Próximo usando Python
AutoValuate: A machine learning-driven tool for classifying used car prices as high or low, enabling smarter decisions in the car resale market.
Machine learning model for: 1) sentiment analysis for online food reviews, 2) classify texts into topics, 3) predicting volcano eruption, 4) classify human genes