Causal Representation Learning

Published on ● Video Link: https://www.youtube.com/watch?v=WI9YxPJ7Khk



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In this video, we explore why causality is critical for robust AI in LLMs, reinforcement learning, and beyond. Dive into groundbreaking work on latent causal variables, learn how interventions (like drug discovery or physics modeling) demand sparse causal rules, and discover why modern ML needs frameworks that predict effects of actions, not just patterns. We’ll break down causal vs. statistical models, real-world applications in healthcare (biomarkers, target ID), and why sparse causal structures mirror laws of physics. Ready to move beyond correlation? Let’s decode causality’s role in trustworthy AI!




#CausalML #CausalRepresentationLearning #AIForGood #HealthcareAI #DrugDiscovery #MachineLearning #reinforcementlearning


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