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Hello
I have a vector of 1400x1 with several adjacent values (values with a difference of less than 1).
For example, my data looks like
A = [1 5 6 7 8 9 10 11 12 20 21 22 23]'
I'd like to delete the row that is adjacent to the previous one, so my expected outcome will be [1; 5; 20]
Any ideas on how to do this? I appreciate your help!

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Davide Masiello
Davide Masiello le 25 Oct 2022
Ran in:

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Ran in:
A = [1 5 6 7 8 9 10 11 12 20 21 22 23];
A([false,diff(A) == 1]) = []
A = 1×3
1 5 20

5 commentaires
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Nao
Nao le 25 Oct 2022
thank you so much for your swift response.
I get an error with this saying:
Error using horzcat
Dimensions of matrices being concatenated are not consistent
Probably because the data is lined vertically in rows (its a vector of 1400 x 1). I'm very new at this so apologize for my lack of understanding;(
Davide Masiello
Davide Masiello le 25 Oct 2022
Modifié(e) : Davide Masiello le 25 Oct 2022
Yes, if you have a column vector then you need to write
A([false;diff(A) == 1]) = []
Nao
Nao le 25 Oct 2022
it worked!! thank you so much!!
Image Analyst
Image Analyst le 26 Oct 2022
But since you said "a difference of less than 1" you'd want <1 instead of == 1
A([false;diff(A) < 1]) = []
Of course then your expected outcome is not right. Maybe you mean "a difference of 1 or less" in which case it would be
A([false;diff(A) <= 1]) = []
Nao
Nao le 27 Oct 2022
thats a great point! thank you!

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