Replace zeros with consecutive numbers in a vectors
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I have a large column vector which looks like this:
A=[1;2;3;4;5;1;5;6;..................;2305;0;0;0;0]
I want to replace the zeros in the end so the new vector looks like this:
A=[1;2;3;4;5;1;5;6;..................;2305;2306;2307;2308;2309]
How can I do this without a loop? The vector changes its size after every iteration, but I always have a couple of zeros in the end.
Respuesta aceptada
There are many ways you could do this. If the zeros are always at the end with no zero beforehand, this will work:
A = [nonzeros(A); A(find(A == 0, 1)-1) + (1:sum(A==0))']
1 comentario
Guillaume
el 17 de Jul. de 2015
And if there can be zeros before the end, this only replaces the zeros at the very end:
lastnumberidx = find(A~=0, 1, 'last');
A = [A(1:lastnumberidx); A(lastnumberidx) + (1:numel(A)-lastnumberidx)']
As I said, plenty of ways...
Más respuestas (1)
Azzi Abdelmalek
el 17 de Jul. de 2015
Editada: Azzi Abdelmalek
el 17 de Jul. de 2015
This takes in account all zeros
A=[1 ;2; 7;0; 0 ;4;8;0;6;7;18;0;0;0;12;0 ;0 ;13]
A=A'
idx1=A==0 ;
ii1=strfind([0 idx1 0],[ 0 1]);
jj=strfind([0 idx1 0],[1 0])-ii1;
[B,C,CC]=deal(zeros(size(A)));
B(ii1)=[0 jj(1:end-1)];
qq=cumsum(idx1).*idx1;
aa=(qq-cumsum(B)).*idx1;
[C(ii1-1),aa(ii1-1)]=deal(A(ii1-1));
CC(ii1-1)=[0 A(ii1(1:end-1)-1)];
DD=cumsum(C-CC).*idx1+aa;
A(idx1)=DD(idx1)
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