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Open-source, low-code AutoML platform for Python. PyCaret 4.0: sklearn-native engine + React control plane.
Postgres with GPUs for ML/AI apps.
mlpack: a fast, header-only C++ machine learning library
🍊 :bar_chart: :bulb: Orange: Interactive data analysis
A fast library for AutoML and tuning. Join our Discord: https://discord.gg/Cppx2vSPVP.
Lazy Predict help build a lot of basic models without much code and helps understand which models works better without any parameter tuning
A Julia machine learning framework
Rust library for quantitative finance.
Python AutoML for Trading Systems and Sports Betting
ThunderSVM: A Fast SVM Library on GPUs and CPUs
MLBox is a powerful Automated Machine Learning python library.
A curated list of all machine learning algorithms and deep learning algorithms grouped by category.
A unified framework for tabular probabilistic regression, time-to-event prediction, and probability distributions in python
Support vector machines (SVMs) and related kernel-based learning algorithms are a well-known class of machine learning algorithms, for non-parametric classification and regression. liquidSVM is an implementation of SVMs whose key features are: fully integrated hyper-parameter selection, extreme speed on both small and large data sets, full flexibility for experts, and inclusion of a variety of different learning scenarios: multi-class classification, ROC, and Neyman-Pearson learning, and least-squares, quantile, and expectile regression.