calculation of a mean matrix
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Hi I have two matrices
a = [1 2 3; 2 3 4]
and
b = [2 3 4; 3 4 5];
I want a mean output matrix "c," whose output should be
c= [1.5 2.5 3.5; 2.5 3.5 4.5].
so basically "c" should have a mean of respective parameters and same dimension as "a" and "b". Can someone help?
Thanks, Subrat
1 Comment
Yanbo
on 15 Aug 2012
you might just simply add a to b, and them divide the sum by 2. Or, are you looking for a specific command?
Accepted Answer
Oleg Komarov
on 15 Aug 2012
Unfortunately your example doesn't allow to propose a unique solution, i.e.:
c1 = [mean(a); mean(b)]
c2 = squeeze(mean(cat(3,a,b),3));
c1 simply takes the vertical mean (along rows) of a and then concatenates the vertical mean of b
c2 takes the mean of row 1 from a AND b and then concatenates the mean of the second row fro the two matrices.
Which one do you want?
More Answers (3)
Image Analyst
on 15 Aug 2012
a = [1 2 3; 2 3 4];
b = [2 3 4; 3 4 5];
c = (a+b)/2
In the command window:
c =
1.5 2.5 3.5
2.5 3.5 4.5
3 Comments
Oleg Komarov
on 15 Aug 2012
This is the so much more intuitive version of my c2!
Alfredo Scigliani
on 25 Apr 2023
what if you have a ridculous amount of matrices (1000) and you want to find the average? I think a for loop, but not sure how.
Steven Lord
on 25 Apr 2023
what if you have a ridculous amount of matrices (1000)
Then I'd recommend you revise the code to avoid that scenario. More likely than not you dynamically created variables with numbered names like x1, x2, x3, etc.
Can you do that? Yes.
Should you do this? The general consensus is no. That Answers post explains why this is generally discouraged and offers several alternative approaches.
a = [1 2 3; 2 3 4];
b = [2 3 4; 3 4 5];
c=[mean(a);mean(b)]
Benjamin Klugah-Brown
on 9 Aug 2020
0 votes
what if matrix a and b have different size
5 Comments
Walter Roberson
on 9 Aug 2020
How would you like to define the results for locations that exist in one array but not in the other array?
Benjamin Klugah-Brown
on 10 Aug 2020
Thinking of using zeros?
Walter Roberson
on 10 Aug 2020
s=max(size(A),size(B)) ;
A1=A;
B1=B;
A1(end+1:s(1),1)=0;
B1(end+1,s(1),1)=0;
A1(1,end+1:s(2))=0;
B1(1,end+1:s(2))=0;
(A1+B1)/2
Benjamin Klugah-Brown
on 10 Aug 2020
Thanks very much... by the ways does it work for NA too?
Walter Roberson
on 10 Aug 2020
If by NA you mean NaN, then you would have to use
mean(cat(3, A1, B1), 3, 'omitnan')
or you would have to use something like
maskA = isnan(A1);
maskB = isnan(B1);
C1 = (A1 + B1) / 2;
C1(maskA) = B1(maskA);
C1(maskB) = A1(maskB);
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