Hi everyone

Instats is excited to offer a 1-day seminar, Dimensionality Reduction with UMAP 
and Beyond 2.0 
<https://instats.org/seminar/dimensionality-reduction-with-umap-and-b>, 
livestreaming on 25 November and led by Dr Nikolay Oskolkov from Lund 
University and Group Leader (PI) at LIOS. If your work involves large, 
multivariate or “big” datasets, mastering dimensionality-reduction techniques 
is indispensable for extracting actionable insights and preparing data for 
downstream analysis. In this intensive workshop, Dr Oskolkov will guide you 
through both classic linear methods such as PCA and cutting-edge nonlinear 
approaches including t-SNE and, in particular, UMAP. You will learn why and 
when to reduce dimensionality, how to code and interpret each technique in R 
and Python, and how to avoid common pitfalls while maximising interpretability. 
Real‐world examples—from single-cell genomics to broader applications in the 
health, social, and natural sciences—anchor the theory in hands-on practice, 
giving you the confidence to preprocess high-dimensional data, select the right 
algorithms, and communicate your findings effectively.

Sign up today 
<https://instats.org//seminar/dimensionality-reduction-with-umap-and-b> to 
secure your spot, and feel free to share this opportunity with colleagues and 
students who might benefit!


Best wishes

Michael Zyphur
Professor and Director
Institute for Statistical and Data Science
https://instats.org
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