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Hi @dynova, did you figure this out? I can't quite follow all of your example, I'm trying to because I want to do something similar. |
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I have an ODE model with a model-constrained custom gradient and a custom method to calculate adjoint sensitivities for use with NUTS.
I would like to know how I can properly feed in the gradient and sensitivities into the NUTS sampler.
I went through the documentation here: https://blackjax-devs.github.io/blackjax/examples/howto_custom_gradients.html
But am still confused as to whether I'm doing it correctly or not.
In contrast to the example in the documentation, my sensitivities have no closed-form analytical expression.
Thanks in advance for any help.
The relevant excerpt of my code is below:
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