Sum N many of the same array, which are each offset by an integer M

조회 수: 8 (최근 30일)
Patrick Bevington
Patrick Bevington 2019년 11월 27일
편집: Turlough Hughes 2019년 11월 27일
I have an array A = [1; 2; 3; 2; 1] and I would like to make an new array B, which is equal to the sum of N many of A, where array N+1 is off set by M many interfers from array N.
Say N = 3 and M = 1, the new array would be B = [1+0+0; 2+1+0; 3+2+1, 2+3+2; 1+2+3; 0+1+2; 0+0+1].
I need A to be an array of any size and I would like to have control over the size of N and M. A will always be 1D in this case
I have attched a picutre of the problem excel. In one case M = 1 and the other M = 2. In both cases N = 3.
Offset arrays and sum together.png
Thanks for any help you can offer

이 질문에 답변하려면 로그인하십시오.

채택된 답변

David Hill
David Hill 2019년 11월 27일
function B = movSum(A,n,m)
B=A;
for k=2:n
B=[B;zeros(m,1)]+[zeros((k-1)*m,1);A];
end
end

추가 답변 (1개)

Turlough Hughes
Turlough Hughes 2019년 11월 27일
편집: Turlough Hughes 2019년 11월 27일
The following should do the job:
N = 3; M = 2; % Inputs
A_t = [1:N N-1:-1:1]'; %single vector 1,2,3,...,N,...,3,2,1
A = zeros((N-1)*M+length(A_t),N); % Preallocate memory for A with zeros
for c = 1:N
A(c*M-1:c*M-2+length(A_t),c) = A_t; % Insert A_t and offset by additional M rows each time
end
The results are then:
A
B=sum(A,2)

카테고리

Help CenterFile Exchange에서 Matrix Indexing에 대해 자세히 알아보기

태그

제품


릴리스

R2019a

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by