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#129 Bayesian Deep Learning & AI for Science with Vincent Fortuin

Learning Bayesian Statistics

CHAPTER

Navigating Bayesian Deep Learning

This chapter explores the intricacies of Bayesian deep learning by comparing it to traditional deep neural networks and discussing critical challenges faced by practitioners. It highlights the fragmentation in available libraries and the need for community collaboration to create integrated tools, while addressing real-world applications in diverse fields. The discussion also emphasizes the importance of prior knowledge, model complexity, and innovative approaches such as meta learning in enhancing the effectiveness of Bayesian methodologies.

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