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I have the following code that returns the values of a histogram:\

[a,b]=hist(x(:),unique(x));

Since I have negative values in x, I get for instance the value -3, and thus get an error, since the number of bins cannot be negative.

What could be a workaround around this?

Thanks.

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1  
What is size(unique(x))? –  Dr_Sam May 22 '13 at 10:58
    
@Dr_Sam. Thanks for your comment. For -4, I for instance got 9 values. Do you mean to replace count with the size. How could that be made in general since the code will be applied on different images? –  Simplicity May 22 '13 at 11:22
    
@Dr_Sam. I tried inserting length(unique(x)), and it seems it removes the error. Is it that what you meant? Do you think this change will have any effect on the output? Thanks –  Simplicity May 22 '13 at 11:48
1  
I meant that if size(unique(x))==1 (i.e. all the values are the same), then Matlab does not understand correctly what you want. See the answer from Shai. –  Dr_Sam May 22 '13 at 12:17

1 Answer 1

the function hist can accept a vecotr of the center of bins. These centers can be negative.
I think that the issue is when unique(x) returns a negative scalar then hist treats it as the number of bins rather than the bins' centers

workaround

ux = unique( x );
if numel( ux ) == 1
   % there is only one unique value in vecor x - 
   % no need to do a histogram, it will only have one bin!
   a = numel( x );
   b = ux;
else
   % many unique values in x - compute a histogram.
   [a, b] = hist(x, ux);
end
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Thanks for your reply. Can you just kindly clarify what the if-statement really does? –  Simplicity May 22 '13 at 11:02
    
@Med-SWEng - see my edit (comments in code) –  Shai May 22 '13 at 11:08
    
Who -1 this answer???? why? what's wrong with it? –  Shai May 22 '13 at 11:54

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