Implementation of Random Forest in Common Lisp.
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Multidimensional cluster generation in Julia.
Multidimensional cluster generation in R.
Basic functions for clustering data: k-means, dp-means, etc.
Reinforcement Learning Coach by Intel® AI Lab enables easy experimentation with state of the art Reinforcement Learning algorithms.
Neural networks, regression and feature learning in Clojure.
Notes, programming assignments and quizzes from all courses within the Coursera Deep Learning specialization offered by deeplearning.ai.
FANN (Fast Artificial Neural Network) binding.
Torch CUDA Neural Network Implementation.
Supports teaching, studying or skills practice with AI-guided learning tools.
Microsoft are pleased to offer a 10-week, 20-lesson curriculum all about Data Science.
Dataframes for machine-learning and statistics (similar to pandas).
Decision Tree Classifier and Regressor.
Deeplearn-rs provides simple networks that use matrix multiplication, addition, and ReLU under the MIT license.
Julia module for Distance evaluation.
Clojure wrapper for Deeplearning4j.
Ready to use deeplearning docker images.
Easy-to-use Federated Learning Platform.
A fast Evolution Strategy implementation in Python.
High-level wrapper built on the top of Pytorch which supports vision, text, tabular data and collaborative filtering.
A collection of functions for mathematical and statistical computing, macine learning, etc., wrapping several JVM libraries.
Large scale Gaussian Mixture Models.
If this is your first time building with Generative AI models, check out our course, which includes 21 lessons on building with GenAI.
Supports teaching, studying or skills practice with AI-guided learning tools.