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#139 Efficient Bayesian Optimization in PyTorch, with Max Balandat

Learning Bayesian Statistics

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Neural Networks and Bayesian Optimization

This chapter explores the use of neural networks as feature extractors for analyzing complex high-dimensional data and emphasizes the role of PyTorch in Bayesian optimization. It discusses the open-sourcing of the Botorch project at Meta, highlighting its significance in enhancing research flexibility and collaboration within the community. Additionally, it addresses challenges in scaling optimization solutions, the importance of data management, and best practices in software engineering for effective machine learning applications.

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