Matrices in a matrix.

조회 수: 4 (최근 30일)
Serra Aksoy
Serra Aksoy 2020년 2월 6일
댓글: Serra Aksoy 2020년 2월 7일
Hi,
I have 4 matrices: X1=[1;2;3;4] X2=[ 5,6,7,8] X3=[9,10,11,12] X4=[13,14,15,16]
I would like to compare these matrices to each other and i want to create a new matrix depending on this comparison.
So I want to create a Y=[yij] 4x4 matrix which consists of matrices.
Now i'll explain the comparing rule with an example.
Here min(X1)= 1 and the max(X1)=4
Let's take x ∈ X2.
If x satisfy min(X1) <= x <= max(X1) it should be 1 in a new matrix , if it does not satisfy min(X1)<= x <= max(X1) it should be 0 in a new matrix.
So in this example i need a matrix :[ 0; 0; 0; 0 ]
According to this rule, i want to create a matrix Y=[yij] which consist of these comparison matrices.
So the first row of Y should consist of 4 elements in other words 4 different matrices related to X1. ( comparison of X1 with itself and others )
  • First element of this matrix is y11 which consists of comparing X1 with itself. ( y11= [1;1;1;1], since every element satisfies the rule)
  • Second element is y12 which consists of comparing X1 with X2. (y12=[0;0;0;0], since none of the elements satisfies the rule)
  • Third element is y13 which consists of comparing X1 with X3.
  • Last element of the first row is y14 which consists of comparing X1 with X4.
In this way, i want to create a 4x4 matrix Y.
Is there any way to do this with for loop?
Thanks.

채택된 답변

Guillaume
Guillaume 2020년 2월 6일
편집: Guillaume 2020년 2월 6일
First thing: a matrix of matrices does not exist mathematically, so what you're asking is an impossibility. In matlab, you can store matrices in a cell array. cell arrays are not matrices and work differently so may not be what you want. For example you can't perform mathematical operations on a cell array.
Second thing: Numbered variables are always a bad idea and will greatly complicate your code. You're embedding an index in the variable name which is problematic. Instead you should be using a cell array or a 2D matrix to store your vectors. Either way, you then use standard matlab indexing to refer to each vector.
I would recommend you store your X vectors as rows of a matrix:
X = [1 2 3 4
5 6 7 8
9 10 11 12
13 14 15 16];
X(1, :) is your original X1, etc.
With that storage, what you want can be done easily without a loop. As said it can't be stored as a 2D matrix. I'd recommend a 3D matrix instead
%Better X for demo
X = [1 2 3 4 5; ... x1
3 5 7 9 11; ... x2
2 4 6 8 10; ... x3
3 9 12 15 18]; % x4
minx = min(X, [], 2); %min of each vector
maxx = max(X, [], 2); %max of each vector
result = X >= reshape(minx, 1, 1, []) & X <= reshape(maxx, 1, 1, [])
result is a numvector x numcolumn x numvector matrix, where result(r, :, p) is the comparison of X(r, :) with X(p, :).
  댓글 수: 3
Guillaume
Guillaume 2020년 2월 6일
편집: Guillaume 2020년 2월 6일
After fixing several typos in the code, you'll find it works properly. Sorry, I should have tested it first.
You'll see that result(1, :, 1) (X1 compared with X1) is indeed [1 1 1 1 1] and result(1, :, 2) (X1 compared with X2) is indeed [1 1 0 0 0]
Serra Aksoy
Serra Aksoy 2020년 2월 7일
Thank you very much for your help. But i have one more queistion.
Could you please just take a look at it? Thanks.

댓글을 달려면 로그인하십시오.

추가 답변 (0개)

카테고리

Help CenterFile Exchange에서 Resizing and Reshaping Matrices에 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