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#56 Causal & Probabilistic Machine Learning, with Robert Osazuwa Ness

Learning Bayesian Statistics

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The Cost of Using Ducalculus to Estimate Correlations?

If this framework of causal, generative machine learning and ducalculus allows you to not only estimate correlations, but also causalities, that it makes the code and the sempling better. Why don't we use that all the time? What's the cost? Is there a big cost of using that? Apart from path dependency that you mentioned before, i would say that so litt say that we're focusing on a kind of applied causal inference problem.

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