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#063 - Prof. YOSHUA BENGIO - GFlowNets, Consciousness & Causality

Machine Learning Street Talk (MLST)

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Enhancing Learning with Semi-Supervised Techniques

This chapter explores semi-supervised learning and interpolation consistency training, focusing on the effective use of labeled and unlabeled data in machine learning models. It examines the role of piecewise linear activation functions in neural networks and discusses the balance between model simplicity and complexity through the lens of regularization.

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