Introduction to Probabilistic Machine Learning (ST 2024) - tele-TASK

By Prof. Dr. Ralf Herbrich

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Episodes: 25

Description

Probabilistic machine learning has gained a lot of practical relevance over the past 15 years as it is highly data-efficient, allows practitioners to easily incorporate domain expertise and, due to the recent advances in efficient approximate inference, is highly scalable. Moreover, it has close relations to causal inference which is one of the key methods for measuring cause-effect relationships of machine learning models and explainable artificial intelligence. This course will introduce all recent developments in probabilistic modeling and inference. It will cover both the theoretical as well as practical and computational aspects of probabilistic machine learning. In the course, we will implement all the inference techniques and apply them to real-world problems.

Episode Date
Exam Preparation
Jul 15, 2024
Real-World Applications
Jul 08, 2024
Information Theory
Jul 01, 2024
Practical Tutorial
Jun 25, 2024
Gaussian Processes
Jun 24, 2024
Tutorial 10 - Recap Theory Unit 9
Jun 18, 2024
Non-Bayesian Classification
Jun 17, 2024
Tutorial 9 - Recap Theory Unit 8
Jun 12, 2024
Bayesian Regression & Bayesian Classification
Jun 10, 2024
Practical Tutorial
Jun 04, 2024
Bayesian Regression
Jun 03, 2024
Tutorial 7 - Recap Theory Unit 6
May 28, 2024
Linear Basis Function Models & Bayesian Regression
May 27, 2024
Tutorial 6 - Recap Theory Unit 5
May 14, 2024
Linear Basis Function Models
May 13, 2024
Practical Tutorial
May 07, 2024
Bayesian Ranking
May 06, 2024
Tutorial 4 - Recap Theory Unit 3 & 4
Apr 30, 2024
Graphical Models: Inference
Apr 29, 2024
Tutorial
Apr 23, 2024
Graphical Models: Independence
Apr 22, 2024
Tutorial 2 - Recap Theory Unit 1 & 2
Apr 16, 2024
Inference & Decision Making
Apr 15, 2024
Julia
Apr 09, 2024
Probability
Apr 08, 2024