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xgboost-algorithm · GitHub Topics · GitHub

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xgboost-algorithm

Here are 456 public repositories matching this topic...

Companion code for Machine Learning From Scratch — 10 core ML algorithms built from scratch with NumPy, compared with Scikit-learn and PyTorch.

  • Updated Jul 19, 2026
  • Jupyter Notebook

A lightweight gradient boosted decision tree package.

  • Updated Apr 13, 2026
  • Rust

Extension of the awesome XGBoost to linear models at the leaves

  • Updated Jun 24, 2019
  • Python

Designed web app employs the Streamlit Python library for frontend design and communicates with backend ML models to predict the probability of diseases. It's capable of predicting whether someone has Diabetes, Heart issues, Parkinson's, Liver conditions, Hepatitis, Jaundice, and more based on the provided symptoms, medical history, and results.

  • Updated Aug 10, 2025
  • Python

Tuning XGBoost hyper-parameters with Simulated Annealing

  • Updated Apr 26, 2017
  • Jupyter Notebook

XGBoost, LightGBM, LSTM, Linear Regression, Exploratory Data Analysis

  • Updated Jan 9, 2020
  • Jupyter Notebook

We have used our skill of machine learning along with our passion for cricket to predict the performance of players in the upcoming matches using ML Algorithms like random-forest and XG Boost

  • Updated Mar 28, 2024
  • Python

Perform a survival analysis based on the time-to-event (death event) for the subjects. Compare machine learning models to assess the likelihood of a death by heart failure condition. This can be used to help hospitals in assessing the severity of patients with cardiovascular diseases and heart failure condition.

  • Updated Aug 26, 2025
  • Jupyter Notebook

Career Guidance System Using Machine Learning Techniques

  • Updated Nov 30, 2020
  • Jupyter Notebook

Binary Classification for detecting intrusion network attacks. In order, to emphasize how a network packet with certain features may have the potentials to become a serious threat to the network.

  • Updated Dec 19, 2021
  • Jupyter Notebook

Determining the important factors that influences the customer or passenger satisfaction of an airlines using CRISP-DM methodology in Python and RapidMiner.

  • Updated Sep 1, 2023
  • Jupyter Notebook

Modified XGBoost implementation from scratch with Numpy using Adam and RSMProp optimizers.

  • Updated Jul 24, 2020
  • Jupyter Notebook

A binary classification model is developed to predict the probability of paying back a loan by an applicant. Customer previous loan journey was used to extract useful features using different strategies such as manual and automated feature engineering, and deep learning (CNN, RNN). Various machine learning algorithms such as Boosted algorithms (…

  • Updated Sep 13, 2022
  • Jupyter Notebook

Machine Learning Project using Kaggle dataset

  • Updated Feb 17, 2019
  • Jupyter Notebook

AI Nexus 🌟 is a streamlined suite of AI-powered apps built with Streamlit. It features 👗 StyleScan for fashion classification, 🩺 GlycoTrack for diabetes prediction, 🔢 DigitSense for digit recognition, 🌸 IrisWise for iris species identification, 🎯 ObjexVision for object recognition, and 🎓 GradeCast for GPA prediction with detailed insights.

  • Updated Apr 12, 2026
  • Jupyter Notebook

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