finding common elements in a matrix

20 ビュー (過去 30 日間)
mahesh bvm
mahesh bvm 2014 年 1 月 8 日
編集済み: Stephen23 2016 年 2 月 25 日
I believe there should be a simple answer but I could not get it myself.
Assume there is a matrix say A =
1.3693 1.6266
0.2054 1.3820
1.4125 0.4844
0.0734 0.7480
1.0499 1.0451
There is one more matrix
B =
1.3693 2.0920
1.9255 1.3820
1.4125 1.8541
0.0734 1.4454
1.0499 1.4112
Now, How do I find common elements in every row of these two matrices?? I must get a final coloumn vector of only the 'common element' of every row of these two matrices.
Any quick reply is highly appreciated
  3 件のコメント
1 件の古いコメントを表示
Matt J
Matt J 2014 年 1 月 8 日
Also, will the "common element" be exactly equal in both A and B or do you need to worry about floating point errors?
mahesh bvm
mahesh bvm 2014 年 1 月 8 日
Yes we need to consider the floating point numbers in each row too....

サインインしてコメントする。

サインインしてこの質問に回答する。

採用された回答

Jos (10584)
Jos (10584) 2014 年 1 月 8 日
I have to make a few assumptions as your question and comments are not clear.
Case A - assumptions: (1) exactly one common element per row (2) in the same column in A and B
tf = abs(A-B) < tol
C = A(tf)
Case B - assumptions: (1) exactly one common element per row (2) that element may be at different columns between A and B
tf = abs(A-B) < tol || abs(fliplr(A)-B) < tol
C = A(tf)
Case C - assumptions: (1) zero or one common element per row (2) in the same column in A and B
tf = abs(A-B) < tol
[r,c] = find(tf)
C = zeros(size(A,1),1)
C(r) = A(tf)
Case D - Assumptions: (1) zero or one common element per row (2) that element may be at different columns between A and B
...
  5 件のコメント
3 件の古いコメントを表示
Salar
Salar 2016 年 2 月 25 日
編集済み: Salar 2016 年 2 月 25 日
And also to be honest, I think this code doesn't do the work see :
a =
90 50
20 11
0 87
11 110
>> b= [ 41 90; 11 31;87 0; 11 -2]
b =
41 90
11 31
87 1
11 -2
>> tf = abs(a-b) < 1e-1 | abs(fliplr(a)-b) < 1e-1; >> LambdaS = a(tf)
LambdaS =
20
0
11
50
87
The output that I need to get is
LambdaS : 90 11 87 11
Stephen23
Stephen23 2016 年 2 月 25 日
編集済み: Stephen23 2016 年 2 月 25 日
You need to take into account that MATLAB operates column-wise:
>> a = [90,50;20,11;0,87;11,110]
>> b = [41,90;11,31;87,1;11,-2]
>> at = a.';
>> bt = b.';
>> xt = at==bt | at==bt([2,1],:)
>> at(xt)
ans =
90
11
87
11

サインインしてコメントする。

その他の回答 (2 件)

Patrik Ek
Patrik Ek 2014 年 1 月 8 日
編集済み: Patrik Ek 2014 年 1 月 8 日
You may use the function ismember. The syntax is
[member,ind] = ismember(A,B);
The first output shows which elements in A that belongs to B and the second output shows at which linear index in B it appears. Then it would be easy to determine at which row it appears since the element numbering in a matrix in matlab is columnwise. The row should just be
rows = mod(ind,nrows);
rows(rows==0 && ind>0) = nrows;
This may however not result in a column vector unless there are exactly 1 common index per row.
BR Patrik
  3 件のコメント
1 件の古いコメントを表示
Patrik Ek
Patrik Ek 2014 年 1 月 8 日
編集済み: Patrik Ek 2014 年 1 月 8 日
That would work I guess, but it is also possible to do a round of on A and B eg,
A = round(10*A)/10; (one decimal)
and analouge on B. Where 10 is here 1/tol. This will work for any tolerance.
A = round(1/tol*A)*tol;
However, this is more like a truncation. It truncates the values in A to a value that is a multiple of 1/tol.
Salar
Salar 2016 年 2 月 25 日
Hello,
What are we supped to put for "nrows" ? when I use your code as it is it says undefined function "nrows" and when I plug in my number of rows for it the matrix rows that I get is just not correct. thanks

サインインしてコメントする。

David Sanchez
David Sanchez 2014 年 1 月 8 日
A = [ 1.3693 1.6266;
0.2054 1.3820;
1.4125 0.4844;
0.0734 0.7480;
1.0499 1.0451];
B = [1.3693 2.0920;
1.9255 1.3820;
1.4125 1.8541;
0.0734 1.4454;
1.0499 1.4112];
C=(A==B);
D=A.*C;
E=sum(D,2);
E =
1.3693
1.3820
1.4125
0.0734
1.0499
% single line code
E2 = sum(A.*(A==B),2);
E2 =
1.3693
1.3820
1.4125
0.0734
1.0499
  3 件のコメント
1 件の古いコメントを表示
Matt J
Matt J 2014 年 1 月 8 日
If there is no common element in a row, you will get 0 in that row.
Patrik Ek
Patrik Ek 2014 年 1 月 8 日
This code snippet does only consider elements that has the exact location. It will not react on for example,
A = [1 2;
3 4];
B = [2 1;
4 3];
Which will yield a vector,
E = [0;
0];
Also this is also requires that each row has exactly one common value.

サインインしてコメントする。

カテゴリ

Help Center および File ExchangeMatrix Indexing についてさらに検索

タグ

Community Treasure Hunt

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

Start Hunting!

Translated by