Going back from cumsum for a matrix

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valentino dardanoni
valentino dardanoni le 21 Oct 2022
Commenté : valentino dardanoni le 21 Oct 2022
Suppose I cumsum a matrix, say A=rand(3,3); B=cumsum(A).
Knowing B, how to I get back to A, in a reasonably efficient way, for a rather large B?
Thanks!
  1 commentaire
valentino dardanoni
valentino dardanoni le 21 Oct 2022
Thankyou David (and Walter). It works perfectly in my application.

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David Hill
David Hill le 21 Oct 2022
Ran in:
A=round(rand(100,100),4);
B=cumsum(A);
a=round([B(1,:);diff(B)],4);
isequal(A,a)
ans = logical
1
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Walter Roberson
Walter Roberson le 21 Oct 2022
Right.
Key points here are the use of diff(), the duplication of the first entry, and the rounding or other way of comparing with tolerance for the cross-check (since you would need to deal with round-off errors.)

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