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I have the following matlab function, the finds the maximum for a number of columns in a matrix:

function m = maximum(u)
[row col] = size(u);

for i=1:col
    m(i) = max(u(:,i))
end
end

I know that the function mean is used in matlab to find the mean value, but how can I use it with my function?

Thanks.

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1 Answer 1

Both mean and max have a vectorized form which is much easier to use:

col_max  = max(u,[],1);  % max of matrix along 1st dimension (max of column)
col_mean = mean(u,1);    % mean of matrix along 1st dimension (mean of column)

Incidentally, std and a number of other functions have similar automatic vectorization:

col_std = std(u,0,1);    % standard deviation, normalized by N-1
                         % , of first dimension (column s.d.)

It's generally easier to use Matlab's built-in vectorized versions. They're less prone to error, and often have better performance for simple operations like this. However, if you'd rather write this as a loop:

function m = column_mean(u)
[row col] = size(u);

for i=1:col
    m(i) = mean(u(:,i));   % <--- replaced max with mean
end
end
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@stewman. Thanks for your reply. What I want to do is first, find the max for each column. And, then for the max values I have, I want to take their mean value. Do you know how this can be done? Thanks... –  Simplicity Apr 20 '13 at 15:29
    
@Med-SWEng mean(max(u,[],1)) –  sfstewman Apr 20 '13 at 15:40
    
@stewman. This will only take the mean for the first column, wouldn't it? –  Simplicity Apr 20 '13 at 15:43
    
@Med-SWEng No. The inner function (max) generates a row-vector that contains the maxima of each column. The outer function (mean) operates on that row-vector, returning the mean of the row vector. The output is the mean of the maxima of each column. I highly recommend actually trying these functions out. Generate a 3x5 toy matrix, use help, and play with the functions. –  sfstewman Apr 20 '13 at 15:48
3  
@Med-SWEng I truly recommend to read the first 4 chapters of the getting started guide, its gonna take 30-40min. –  Oleg Komarov Apr 20 '13 at 16:04

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