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Directly using Index of max value without storing

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Matthew Knights
Matthew Knights il 26 Lug 2016
Commentato: Matthew Knights il 26 Lug 2016
Hi,
I want to use the index of a maximum value in a vector directly without storing it as a variable. i.e:
I have a vector X = [1 3 2 9 2 1], and a vector Y = [10 20 30 50 60 70] and I want to extract the value in Y corresponding to the max value in X. I know I can use:
[M,I] = max(X); then
Value = Y(I);
But I can't work out how to do this in a single line without storing the value of "I", to acheive something like:
Value = Y(...index of max value of X...)
Any help greatly appreciated.
Thanks,
Matt
  2 Commenti
Stephen23
Stephen23 il 26 Lug 2016
@Matthew Knights: what output do you want if there are two identical maximum values ? E.g.:
X = [1 3 2 9 2 9]
Y = [10 20 30 50 60 70]
value = ???
Matthew Knights
Matthew Knights il 26 Lug 2016
Good question.
My problem is such that this won't occur for my application, so it is something I hadn't considered.
But for argument's sake I guess in an ideal world you would want both Y values given... But I see how this makes things more complicated.

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Guillaume
Guillaume il 26 Lug 2016
This is one of the downside of matlab's syntax. It is not possible to chain expressions that use anything but the 1st return value. You have to use a temporary variable.
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Matthew Knights
Matthew Knights il 26 Lug 2016
Thanks Guillaume.
I guess that's a fair sacrifice for Matlab's positive qualities.
It's always reassuring to find that the question you ask has a genuine reason behid it rather than just missing something glaringly obvious.
Many thanks,
Matthew

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Andrei Bobrov
Andrei Bobrov il 26 Lug 2016
out = Y(max(X)==X)
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Guillaume
Guillaume il 26 Lug 2016
Certainly not! There's no guarantee that the value in Y would be the same for identical max values in X.
This would work:
Y(find(max(X) == X, 1))
as long as X and Y are vectors. Reproducing the same behaviour for matrices would be harder.
Matthew Knights
Matthew Knights il 26 Lug 2016
Thank you for the suggestions. My application is fairly simple so these will be applicable regardless of limitations for more complex problems. But I'm always glad to understand the whole scope for future use.
Many thanks

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