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I'm writing a hierarchical model using pymc and have a little problem. I want to implement the following: a total of N people are dividing into 2 groups. The group xi ~ Bernoulli(0.5). for person i, if xi=0 (belonging to the first group), yi ~ N(mu1, sigma1); else if xi=1(belonging to the second group), yi~N(mu2,sigma2). Here is my code
This triggered a typeError: 'TensorVariable' object does not support item assignment.
This is actually a small part of my model. So how can I implement a similar function, i.e., how can I assign values to certain prior distribution separately for a larger group of subjects?
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