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Hi, your
and then running your last block of code works. |
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I am new to GPytorch and my question might seem rudimentary! but I am really stuck!
To explain my problem, I use a simple GP regressor to explain the problem. Let's say I have the following model in GPytorch to train a regressor:
Now, I can do the prediction automatically by the GPytorch built-in functionality as:
But since I would like to make some other inferences, I would use the optimized hyperparameters for some calculations; I realized that I could not even replicate the prediction made by the model as above! Here my code for making the prediction based on the model hyperparameters:
Problem:
The manual prediction (pred_mean and pred_var) is entirely different from those obtained from the GPytorch built-in functionality (model_mean, model_var). I have not been able to figure out where I go wrong.
Any help is highly appreciated!
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