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I want to have something like:

Mu = mean(X); % column-wise means
X(X == 0) = Mu(current_column); % assign the mean value of the current column to the zero-element

But how do I tell matlab that I want to assign the mean of the current column (i.e. the column the current zero-value is in) to the matrix entry at the current zero-value?

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2 Answers

up vote 2 down vote accepted

You could make an array the same shape as X containing the column-wise means:

means = repmat(mean(X), [size(X,1) 1]);
X(X==0) = means(X==0);

[EDITED to add...]

Or, if the explicit expansion of the array offends you, you could do this:

X = bsxfun(@(x,y)(x+(x==0)*y), X, mean(X));

which is a bit too "clever" for my taste, but seems to be about 25% faster in the single case I tested (1000x1000 array, about 10% of which is zeros).

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I like the second one! –  ptikobj Mar 10 '11 at 18:39
    
However, applying the second one yields: "??? Subscript indices must either be real positive integers or logicals." Probably because of means(X)? –  ptikobj Mar 10 '11 at 18:45
    
Oops. I meant "mean(X)", not "means(X)". Will edit, with apologies for the way that will make nonsense of your comment :-). –  Gareth McCaughan Mar 10 '11 at 19:07
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Here's a vectorized solution that's faster than using BSXFUN and doesn't require replication of the array of column means. It simply finds the corresponding column index for every linear index to be modified, then uses that index to get the correct column mean:

colMeans = mean(X);    %# Get the column means
index = find(X == 0);  %# Get the linear indices of the zero values
colIndex = ceil(index./size(X,1));  %# Get the column index for each linear index
X(index) = colMeans(colIndex);      %# Reassign zeroes with the column means

And here's a test case:

>> X = randi([0 1],5)  %# Generate a random matrix of zeroes and ones

X =

     0     1     0     1     0
     1     0     0     1     1
     0     1     0     1     0
     1     1     1     0     1
     0     1     0     0     1

>> colMeans = mean(X);
>> index = find(X == 0);
>> colIndex = ceil(index./size(X,1));
>> X(index) = colMeans(colIndex)

X =

    0.4000    1.0000    0.2000    1.0000    0.6000
    1.0000    0.8000    0.2000    1.0000    1.0000
    0.4000    1.0000    0.2000    1.0000    0.6000
    1.0000    1.0000    1.0000    0.6000    1.0000
    0.4000    1.0000    0.2000    0.6000    1.0000
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technically a nice solution, but in what context your actual mean calculation will hold? Thanks –  eat Mar 10 '11 at 20:43
    
@eat: In the context of the question. ;) In other words, I don't know why or for what purpose ptikobj wants to replace zero values with the column mean, I simply showed how it can be done efficiently. –  gnovice Mar 10 '11 at 20:53
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