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Logistic Regression Models · Awesome GitHub Repositories

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Awesome GitHub RepositoriesLogistic Regression Models

Algorithms for predicting binary outcomes using the sigmoid function and weight optimization.

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  • eriklindernoren/ML-From-Scratch

    eriklindernoren/ML-From-Scratch

    30,849View on GitHub↗

    This project is an educational toolkit that provides implementations of fundamental machine learning algorithms built from scratch. By avoiding high-level library abstractions, it serves as a pedagogical reference for understanding the mathematical foundations and core mechanics of supervised learning, unsupervised learning, and reinforcement learning models. The repository distinguishes itself through a modular approach to model construction, allowing users to build custom neural networks by chaining independent functional blocks. It covers a wide range of techniques, including gradient-base

    Predict the likelihood of binary outcomes by applying the sigmoid function and optimizing weights through gradient descent.

    Pythondata-miningdata-sciencedeep-learning
    30,849View on GitHub↗