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#137 Causal AI & Generative Models, with Robert Ness

Learning Bayesian Statistics

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Causal Inference in Deep Learning Education

This chapter explores the challenges of teaching causal inference within the realm of deep learning, advocating for clear pedagogical strategies. It emphasizes the importance of practical applications and structured roadmaps to aid learners in navigating complex concepts while integrating tools like PyTorch for enhanced understanding. The discussion highlights the intersection of causal reasoning and machine learning, illustrating how effective integration can lead to more meaningful insights and applications in various fields.

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