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Batch processing pyro models so cc Until now i have not been able to figure out how to solve my issues, and there are little examples that come close to. @fonnesbeck as i think he’ll be interested in batch processing bayesian models anyway
I want to run lots of numpyro models in parallel Dear developers and other pyro experts, i have been trying to set up an hmc/mcmc/nuts sampling routine with pyro, specifically by providing my own likelihood function that ‘describes’ the posterior distribution but is not constructed by a combination of torch distributions I created a new post because
This post uses numpyro instead of pyro i’m doing sampling instead of svi i’m using ray instead of dask that post was 2021 i’m running a simple neal’s funnel.
Hi, i’m using the latest pyro and tutorials In another place i have a bvae pytorch implementation that trains on audio waveforms and denoises them by losing information during reconstruction The training step is as f… This would appear to be a bug/unsupported feature
If you like, you can make a feature request on github (please include a code snippet and stack trace) However, in the short term your best bet would be to try to do what you want in pyro, which should support this. From our experience, we have known the distribution might be learned through pyro Could you kindly tell us which tutorial or code can solve a similar problem, with a pyro style method
Your advice is curial for us
This is my first time using pyro so i am very excited to see what i can built with it.🙂 specifically, i am trying to do finite dirichlet process clustering with variational inference I want to generalize this into a chinese restaurant process involving an “infinite” number of states Model and guide shapes disagree at site ‘z_2’ Torch.size ( [2, 2]) vs torch.size ( [2]) anyone has the clue, why the shapes disagree at some point
Here is the z_t sample site in the model Z_loc here is a torch tensor wi…
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