필터 지우기
필터 지우기

HOW TO RESHAPE 3D ARRAY WITH DIFFERENT DIRECTIONS?

조회 수: 1 (최근 30일)
Triveni
Triveni 2021년 8월 21일
편집: DGM 2021년 8월 21일
for i = 1:length(j)
NETPLP(:,:,i)= [BPavg1(1,1,i), SPavg1(1,1,i), NETPLP1(1,1,i); BPavg2(1,1,i), SPavg2(1,1,i), NETPLP2(1,1,i); BPavg3(1,1,i), SPavg3(1,1,i), NETPLP3(1,1,i); BPavg4(1,1,i), SPavg4(1,1,i), NETPLP4(1,1,i); BPavg5(1,1,i), SPavg5(1,1,i), NETPLP5(1,1,i); BPavg6(1,1,i), SPavg6(1,1,i), NETPLP6(1,1,i); BPavg7(1,1,i), SPavg7(1,1,i), NETPLP7(1,1,i); BPavg8(1,1,i), SPavg8(1,1,i), NETPLP8(1,1,i)];
end
PL1 = reshape(permute(NETPLP(1,:,:),[1,3,2]), size(NETPLP(1,:,:),1)*size(NETPLP(1,:,:),3), 3);
PL2 = reshape(permute(NETPLP(2,:,:),[1,3,2]), size(NETPLP(2,:,:),1)*size(NETPLP(2,:,:),3), 3);
PL3 = reshape(permute(NETPLP(3,:,:),[1,3,2]), size(NETPLP(3,:,:),1)*size(NETPLP(3,:,:),3), 3);
PL4 = reshape(permute(NETPLP(4,:,:),[1,3,2]), size(NETPLP(4,:,:),1)*size(NETPLP(4,:,:),3), 3);
PL5 = reshape(permute(NETPLP(5,:,:),[1,3,2]), size(NETPLP(5,:,:),1)*size(NETPLP(5,:,:),3), 3);
PL6 = reshape(permute(NETPLP(6,:,:),[1,3,2]), size(NETPLP(6,:,:),1)*size(NETPLP(6,:,:),3), 3);
PL7 = reshape(permute(NETPLP(7,:,:),[1,3,2]), size(NETPLP(7,:,:),1)*size(NETPLP(7,:,:),3), 3);
PL8 = reshape(permute(NETPLP(8,:,:),[1,3,2]), size(NETPLP(8,:,:),1)*size(NETPLP(8,:,:),3), 3);
PL= [PL1;PL2;PL3;PL4;PL5;PL6;PL7;PL8];
LENGTH(J) = 20. IN WHICH I GOT
I WANT VALUES OF PL WITHOUT ASSIGNING THE VARIABLE PL1, PL2, P3, PL4, PL5, PL6, PL7 AND PL8.
PLEASE HELP ME.
  댓글 수: 3
이전 댓글 1개 표시
Triveni
Triveni 2021년 8월 21일
편집: darova 2021년 8월 21일
I have tried this earlier but
PL=NETPLP(1:8,:,:)
PL(:,:,1) =
22 22.05 11.04
22 21.95 -13.96
20.95 21 11.06
21.05 21 -13.94
22 21.95 -13.96
22 20.95 -263.95
22.05 21 -263.95
20.95 21 11.06
I have to rearrange this array. I have to select 1st row from each array then 2nd row to each array and so on. then i have to merge all into single matrix.
DGM
DGM 2021년 8월 21일
What are the sizes of BPavg#, SPavg#, NETPLP#?

댓글을 달려면 로그인하십시오.

이 질문에 답변하려면 로그인하십시오.

채택된 답변

DGM
DGM 2021년 8월 21일
편집: DGM 2021년 8월 21일
This is why using numbered variables instead of arrays is a bad idea.
No need for a loop. Depending on the size of the inputs, just address the arrays accordingly (pick one)
% assuming that BPavgN, SPavgN, NETPLPN are all mxnx20
NETPLP = [BPavg1(1,1,:), SPavg1(1,1,:), NETPLP1(1,1,:);
BPavg2(1,1,:), SPavg2(1,1,:), NETPLP2(1,1,:);
BPavg3(1,1,:), SPavg3(1,1,:), NETPLP3(1,1,:);
BPavg4(1,1,:), SPavg4(1,1,:), NETPLP4(1,1,:);
BPavg5(1,1,:), SPavg5(1,1,:), NETPLP5(1,1,:);
BPavg6(1,1,:), SPavg6(1,1,:), NETPLP6(1,1,:);
BPavg7(1,1,:), SPavg7(1,1,:), NETPLP7(1,1,:);
BPavg8(1,1,:), SPavg8(1,1,:), NETPLP8(1,1,:)];
% if they are 1x1x20
NETPLP = [BPavg1, SPavg1, NETPLP1;
BPavg2, SPavg2, NETPLP2;
BPavg3, SPavg3, NETPLP3;
BPavg4, SPavg4, NETPLP4;
BPavg5, SPavg5, NETPLP5;
BPavg6, SPavg6, NETPLP6;
BPavg7, SPavg7, NETPLP7;
BPavg8, SPavg8, NETPLP8];
The rest seems simple enough
% reshape the array
PL = reshape(permute(NETPLP,[3 1 2]),[],3);

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 Matrix Indexing에 대해 자세히 알아보기

태그

제품

Community Treasure Hunt

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

Start Hunting!

Translated by