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I am trying to find the maximum pixel value of a cv::Mat.

The Problem : *maxValue is always returning 0.

From this S.O. thread, I understand that 'max_element return iterators, not values. This is why I use *maxValue'

cv::Mat imageMatrix;

double  sigmaX = 0.0;
int ddepth = CV_16S; //  ddepth – The desired depth of the destination image


cv::GaussianBlur( [self cvMatFromUIImage:imageToProcess], imageMatrix, cv::Size(3,3), sigmaX);

cv::Laplacian(imageMatrix, imageMatrix, ddepth, 1);

std::max_element(imageMatrix.begin(),imageMatrix.end());

std::cout << "The maximum value is : " << *maxValue << std::endl;

Note : If min_element is substituted in place of max_element, and minValue in place of maxValue, *minValue will always return 0.

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  • Maybe imageMatrix is all zeros? Try printing it to see what it contains.
    – user995502
    Apr 11, 2013 at 17:43
  • Thanks stardust_. I printed it out to the console and it is not.
    – Ríomhaire
    Apr 11, 2013 at 17:44
  • When I attempted to use std::max_element(imageMatrix.begin(),imageMatrix.end()); I received the error No matching member function call to begin. I do not fully understand the <typename_tp>.
    – Ríomhaire
    Apr 11, 2013 at 17:51
  • Ya I see man I thought it was a normal container. I think OpenCV has it's own containers. Maybe that's why std::max_element doesn't work on them.
    – user995502
    Apr 11, 2013 at 18:01
  • What elements does imageMatrix contains?
    – shivakumar
    Apr 11, 2013 at 18:05

1 Answer 1

61

You should use the OpenCV built-in function minMaxLoc instead of std function.

Mat m;
//Initialize m
double minVal; 
double maxVal; 
Point minLoc; 
Point maxLoc;

minMaxLoc( m, &minVal, &maxVal, &minLoc, &maxLoc );

cout << "min val: " << minVal << endl;
cout << "max val: " << maxVal << endl;
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  • 4
    Cheers @shivakumar! I used double minVal; double maxVal; cv::minMaxLoc(imageMatrix, &minVal, &maxVal);
    – Ríomhaire
    Apr 12, 2013 at 10:55
  • 2
    minMaxLoc is quite a slow function if what you are looking for is just the maximum value in the image... It's a problem difficult to avoid when using wider purpose functions.
    – Antonio
    Apr 9, 2014 at 9:30
  • @Antonio This answer tells minMaxLoc is super fast- stackoverflow.com/a/26409969/1180117 Apr 16, 2015 at 7:27
  • 3
    @Kiran OP is apparently not interested in knowing the location of the max, but just the value. Now, you can use minMaxIdx which is the one actually mentioned to be fast (I suggest you update your answer). However, if you could have the same function to compute just the maximum, you would have half of the processing going on (not half of the memory reading though). If you have a very specific problem and you use a wider scope library function, you'll end up with some unnecessary computation, that's a general rule.
    – Antonio
    Apr 16, 2015 at 8:03
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    @Kiran Probably in the end not (I changed my opinion in the meantime :) ). I suppose the iterator is implemented in a way that checks if it reached the end of a row. I expect it just to be inefficient, but not wrong.
    – Antonio
    Apr 16, 2015 at 8:19

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