How to insert a zero column vector in a matrix according to a particular position?

조회 수: 37 (최근 30일)
chan
chan 2022년 6월 13일
편집: Star Strider 2022년 6월 17일
I have a matrix 4*4. i want to insert a zero column vector based on a particular position. position can be 1 or 2 or 3 or 4 or 5. How can we implement this?

이 질문에 답변하려면 로그인하십시오.

답변 (3개)

dpb
dpb 2022년 6월 13일
편집: dpb 2022년 6월 14일
ixInsert=N; % set the index
Z=zeros(size(M,1)); % the insert vector (don't hardcode magic numbers into code)
if ixInsert==1 % insert new column in front
M=[Z M];
elseif ixInsert==(size(M,2)+1) % or at end
M=[M Z];
else % somewhere in the middle
M=[M(:,1:ixInsert-1) Z M(:,ixInsert:end)];
end
Add error checking to heart's content...
  댓글 수: 3
이전 댓글 1개 표시
dpb
dpb 2022년 6월 14일
편집: dpb 2022년 6월 14일
Read more carefully... Z is a single column vector the length of which matches the number of rows of the original M so it does precisely what you asked for...I simply made the code generic for any matrix/array, M, rather than, again, hardocding in a magic number for the specific instance.
Ideally, package the above code in a function and call it...
function M=insertColumnN(M,C)
% insertColumn(M,N) places a column of zeros in input Array at column C
Z=zeros(size(M,1)); % the insert vector (don't hardcode magic numbers into code)
if C==1
M=[Z M];
elseif C==(size(M,2)+1)
M=[M Z];
else
M=[M(:,1:C-1) Z M(:,C:end)];
end
chan
chan 2022년 6월 16일
Thank you. I got some brief idea from your code.

댓글을 달려면 로그인하십시오.

Ayush Singh
Ayush Singh 2022년 6월 14일
Ran in:
Hi chan,
From your statement I understand that you want to insert a zero column vector at a given position in a 4*4 matrix.
Now suppose you have a N*N matrix and you want to insert the zero column vector at nth position For that
Create a N*1 zero column vector first.
zero_column_vector=zeros(4,1) % to create N row and 1 column zero vector (Here N is 4)
zero_column_vector = 4×1
0 0 0 0
Now that you have your zero column vector you would need the position where you want to place the vector in the matrix.
Lets say the position is 'n'. So now concatenate the zero column vector in the given position by
[A(:,1:n) zero_column_vector A(:,n+1:end)] % A is the N*N matrix here
  댓글 수: 2
chan
chan 2022년 6월 15일
Thank you. This gives me some idea how to solve my problem
dpb
dpb 2022년 6월 15일
Exactly what my solution above does except I chose to insert before the input column number instead of after -- that's simply a "count adjust by one" difference.

댓글을 달려면 로그인하십시오.

Star Strider
Star Strider 2022년 6월 16일
편집: Star Strider 2022년 6월 17일
Ran in:
Another approach —
M = randn(4) % Original Matrix
M = 4×4
2.0100 0.5562 0.0693 -1.9815 1.0954 -1.7139 -1.1686 1.0233 -0.1497 0.6061 -0.2158 -0.4245 0.7403 -1.1888 -0.1240 -0.3121
[rows,cols] = size(M);
A = zeros(rows,cols+1); % Augmented Matrix
zeroCol = 3; % Insert Zero Column At #3
idx = setdiff(1:size(A,2), zeroCol);
A(:,idx) = M
A = 4×5
2.0100 0.5562 0 0.0693 -1.9815 1.0954 -1.7139 0 -1.1686 1.0233 -0.1497 0.6061 0 -0.2158 -0.4245 0.7403 -1.1888 0 -0.1240 -0.3121
A = zeros(rows,cols+1);
zeroCol = 5; % Insert Zero Column At #5
idx = setdiff(1:size(A,2), zeroCol)
idx = 1×4
1 2 3 4
A(:,idx) = M
A = 4×5
2.0100 0.5562 0.0693 -1.9815 0 1.0954 -1.7139 -1.1686 1.0233 0 -0.1497 0.6061 -0.2158 -0.4245 0 0.7403 -1.1888 -0.1240 -0.3121 0
EDIT — (17 Jun 2022 at 10:59)
This can easily be coded to a function —
M = randn(4)
M = 4×4
0.2606 1.2419 -0.0297 -0.1365 0.2304 1.6802 0.0920 0.8995 0.1835 0.3499 -1.6399 -0.0510 1.9357 -0.2835 1.1602 -0.0601
for k = 1:size(M,2)+1
fprintf(repmat('—',1,50))
InsertZerosColumn = k
Result = InsertZeroCol(M,k)
end
——————————————————————————————————————————————————
InsertZerosColumn = 1
Result = 4×5
0 0.2606 1.2419 -0.0297 -0.1365 0 0.2304 1.6802 0.0920 0.8995 0 0.1835 0.3499 -1.6399 -0.0510 0 1.9357 -0.2835 1.1602 -0.0601
——————————————————————————————————————————————————
InsertZerosColumn = 2
Result = 4×5
0.2606 0 1.2419 -0.0297 -0.1365 0.2304 0 1.6802 0.0920 0.8995 0.1835 0 0.3499 -1.6399 -0.0510 1.9357 0 -0.2835 1.1602 -0.0601
——————————————————————————————————————————————————
InsertZerosColumn = 3
Result = 4×5
0.2606 1.2419 0 -0.0297 -0.1365 0.2304 1.6802 0 0.0920 0.8995 0.1835 0.3499 0 -1.6399 -0.0510 1.9357 -0.2835 0 1.1602 -0.0601
——————————————————————————————————————————————————
InsertZerosColumn = 4
Result = 4×5
0.2606 1.2419 -0.0297 0 -0.1365 0.2304 1.6802 0.0920 0 0.8995 0.1835 0.3499 -1.6399 0 -0.0510 1.9357 -0.2835 1.1602 0 -0.0601
——————————————————————————————————————————————————
InsertZerosColumn = 5
Result = 4×5
0.2606 1.2419 -0.0297 -0.1365 0 0.2304 1.6802 0.0920 0.8995 0 0.1835 0.3499 -1.6399 -0.0510 0 1.9357 -0.2835 1.1602 -0.0601 0
function NewMtx = InsertZeroCol(OldMtx, InsertZerosCol)
[rows,cols] = size(OldMtx); % Get 'OldMtx' Information
NewMtx = zeros(rows,cols+1); % Augmented Matrix
idx = setdiff(1:cols+1, InsertZerosCol); % 'NewMtx' Column Index Vector
NewMtx(:,idx) = OldMtx; % New Matrix With Inserted Zeros Column
end
.

카테고리

Help CenterFile Exchange에서 Logical에 대해 자세히 알아보기

태그

Community Treasure Hunt

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

Start Hunting!

Translated by