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Is there a way to find the mean square error in matlab between 2 images A,B(say) in true color of dimension 256*256*3 ? The mathematical formula for a matrix say M1 and M2 is as under

mean sq err=1/n*n { summation (square[M1(i,j)-M2(i,j)])}

where i stands for row and j stands for column

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Have you tried the statistics or the filter design toolboxes? help <toolboxname> –  linuxuser27 Sep 11 '10 at 19:31

4 Answers 4

up vote 21 down vote accepted

Well, start writing! Eat a programming elephant (even the smallest ones) one byte at a time!

How do we form the difference of two images? First, convert them to doubles in case they are uint8 images, as is common. DO IT! TRY IT! Learn to write matlab code by doing so, and do it in pieces, so you can follow what you did.

First of all, you have not told us if this is to be a MSE over all three channels. Your formula says that we should end up with a different MSE for each of the red, green and blue channels.

double(M1) - double(M2)

Now, how would you form the square of each difference? Use the .^ operator.

(double(M1) - double(M2)).^2

Next, mean squared error implies that we take the mean over all rows and columns. A simple way to do this is with the mean function. This call takes the mean across the rows.

mean((double(M1) - double(M2)).^2,2)

And the next one takes the mean down the columns.

mean(mean((double(M1) - double(M2)).^2,2),1)

The result will be a 1x1x3 vector. Convert that into a 1x3 vector using the reshape function. (The squeeze function would help as well.) Packaging it all into one line, we get this...

MSE = reshape(mean(mean((double(M1) - double(M2)).^2,2),1),[1,3]);

If this seems complex to you, then you are best off splitting it into several lines, with comments that remind you what you did for later.

But the point is, you create an operation in matlab by breaking it down into manageable pieces.

EDIT:

In many cases, people want the RMSE (root-mean-squared-error) which has units the same as your original numbers. It is just the square root of the MSE.

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1  
Thanx a lot..also the encouragement is appreciated. –  gavishna Sep 12 '10 at 3:29
    
Why does the index 2, other than the square term, in mean((double(M1) - double(M2)).^2,2) represent the rows? I mean in matlab 1 stands for rows and 2 stands for column or is it vice versa?Please clarify. –  gavishna Sep 14 '10 at 17:30
    
Good question. My wording may have been misleading. If X is a matrix of shape NxMxP, sum(X,2) forms a sum over the columns of X, i.e., the SECOND dimension of X, producing a result that has shape Nx1xP. –  user85109 Sep 15 '10 at 13:14

Mean square error for each channel independently:

R1 = M1(:,:,1);
G1 = M1(:,:,2);
B1 = M1(:,:,3);

R2 = M2(:,:,1);
G2 = M2(:,:,2);
B2 = M2(:,:,3);

dR = int32(R1) - int32(R2);
dG = int32(G1) - int32(G2);
dB = int32(B1) - int32(B2);

mseR = mean(dR(:).^2);
mseG = mean(dG(:).^2);
mseB = mean(dB(:).^2);

If this is part of an image registration algorithm, you might want to do away with the squared term:

R1 = M1(:,:,1);
G1 = M1(:,:,2);
B1 = M1(:,:,3);

R2 = M2(:,:,1);
G2 = M2(:,:,2);
B2 = M2(:,:,3);

dR = int32(R1) - int32(R2);
dG = int32(G1) - int32(G2);
dB = int32(B1) - int32(B2);

errR = sum(abs(dR(:))); % 32bits sufficient for sum of 256x256 uint8 img.
errG = sum(abs(dG(:)));
errB = sum(abs(dB(:)));

sumErr = errR + errG + errB;

For additional performance, you might also want to consider converting to a single channel and spatially downsampling, although the effectiveness of this will depend on image content.

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Thank you for this method also. Is it not necessary to divide the result of MSe by the number of sample points?like in the actual mathematical formula it is divided by n square where n= number of sample points chosen randomly. –  gavishna Sep 14 '10 at 17:26
    
even your answer is correct,but somehow I am unable to select both the answers as the correct ones!!May be in this forum we cant accept 2 answers at the same time i think. –  gavishna Sep 18 '10 at 5:29
    
The division happens within the call to "mean". > I.e. mean == (sum(delta.^2) / nPoints) –  William Payne Sep 20 '10 at 13:30
a % your array1
b %your array2

m1=0;

for i=1:N
     m1=m1+(actual_effort(i)-Esti_effort1(i))^2;

end

RMSE1=sqrt((1/N)*m1); 
disp('Root Mean Square Error for Equation1=')
RMSE1
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% MSE & PSNR for a grayscale image (cameraman.tif) & its filtered versions
clear
clc
im=imread('cameraman.tif');
im=im2double(im);
h1=1/9*ones(3,3);
imf1=imfilter(im,h1,'replicate');% 'corr'
h2=1/25*ones(5,5);
imf2=imfilter(im,h2,'replicate');% 'corr'

MSE1=mean(mean((im-imf1).^2));
MSE2=mean(mean((im-imf2).^2));
MaxI=1;% the maximum possible pixel value of the images.
PSNR1=10*log10((MaxI^2)/MSE1);
PSNR2=10*log10((MaxI^2)/MSE2);
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