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A Python package following the scikit-learn API for model-based clustering and generalized mixture modeling (latent class/profile analysis) of continuous and categorical data. StepMix handles missing values through Full Information Maximum Likelihood (FIML) and provides multiple stepwise Expectation-Maximization (EM) estimation methods.
Economic preference clustering analysis using generative and deep learning models, including Gaussian Mixture Models (GMM), Wishart Mixture Models (WMM), and Variational Deep Embedding (VaDE).
Grog Mixture-Of-Agents (MoA) is a sophisticated chatbot framework that integrates multiple open-source models to deliver high-quality responses. It features a user-friendly web-based GUI, supports persistent chats, and allows topic management for seamless and organized interactions.
Statistical consulting project in partnership with the Netherlands Forensic Institute (NFI) involving the probabilistic modelling of mRNA in fluid mixtures.