1,000 nds all in the same location #426
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Hello, I'm trying to minimise the output of a Gaussian process using NSGA2. This has two outputs: prediction and uncertainty. Here I'm negating uncertainty to minimise prediction whilst maximising uncertainty. My question is regarding the results that I'm getting: what are some possible reasons for having 1,000 nds all in the same location? - is it due to an error in the code? See the code below and output for when verbose=True, along with the plot of the nds. Thank you Code:
Outputs: Thank you |
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Replies: 1 comment
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Solved it. It is not a pymoo issue but a GP kernel issue. My bad! Just wondering though... does everything look as it should above in terms of the code? Thank you |
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Solved it. It is not a pymoo issue but a GP kernel issue. My bad! Just wondering though... does everything look as it should above in terms of the code? Thank you