ML Math Review: Probabilistic Principal Component Analysis
Автор: MLT Artificial Intelligence
Загружено: 2020-09-16
Просмотров: 1293
"Probabilistic PCA, Kernel PCA" by Hiroshi Urata, Data Scientist at IBM, Twitter / hiroshiu12 , Blog: https://hiroshiu.blogspot.com/
This is a series of interactive discussions during our remote ML Math Reading Sessions もくもくかい organized by Machine Learning Tokyo, hosted by Emil Vatai, Research Scientist at RIKEN, Japan. We're discussing "Mathematics For Machine Learning" by Marc Peter Deisenroth, A Aldo Faisal, and Cheng Soon Ong.
Emil's DISCLAIMER: Friendly discussions among enthusiasts of math and machine learning, with the aim to improve our understanding of the discussed topics. Errors and omissions may be made, so please treat it with a healthy dose of scepticism. We appreciate feedback, error corrections, further thoughts and links to additional resources. We also encourage you to join us for discussions (see MLT Meetup) and welcome enthusiasts across different skill levels – from beginner to expert.
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