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if (pbcg(k+M) > pbcg(k-1+M) && pbcg(k+M) > pbcg(k+1+M) && pbcg(k+M) > threshold)

    peaks_y(Counter) = pbcg(k+M);

    peaks_x(Counter) = k + M;

    py = peaks_y(Counter);
    px = peaks_x(Counter);


    plot(px,py,'ro');
    Counter = (Counter + 1)-1;

    fid = fopen('y1.txt','a');
    fprintf(fid, '%d\t%f\n', px, py);
    fclose(fid);
  end
end

this code previously doesn't have any issue on finding the peak.. the main factor for it to find the only peak is this if (pbcg(k+M) > pbcg(k-1+M) && pbcg(k+M) > pbcg(k+1+M) && pbcg(k+M) > threshold) but right now it keep show me all the peak that is above the threshold instead of the particular highest peak..

UPDATE: what if the highest peaks have 4nodes that got the same value?

EDIT: If multiple peaks with the same value surface, I will take the value at the middle and plot.

What I mean by that is for example [1,1,1,4,4,4,2,2,2]

I will take the '4' at the 5th position, so the plot will be at the center of the graph u see

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1  
If you have all the peaks it should not be too hard to find the one with max size. –  Dennis Jaheruddin Jul 23 '13 at 9:34
    
i would like to know from the code i posted, how to solve the peaks that got the same value issue? as in if there is 4peaks that is on the same value, the 'IF' code won't be running as it didn't meet the requirement.. as in the max size function only allow peak that is the highest right? or i misread it –  myfriday13 Jul 24 '13 at 1:54

3 Answers 3

It will be much faster and much more readable to use the built-in max function, and then test if the max value is larger than the threshold.

[C,I] = max(pbcg);
if C > threshold
    ... 
    %// I is the index of the maximal value, and C is the maximal value.
end
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Clean, simple, and correct. –  Floris Jul 23 '13 at 12:13
    
what if for example there are 4 peaks of same value? –  myfriday13 Jul 24 '13 at 1:34
    
i would like to know from the code i posted, how to solve the peaks that got the same value issue? as in if there is 4peaks that is on the same value, the 'IF' code won't be running as it didn't meet the requirement –  myfriday13 Jul 24 '13 at 1:38
    
@myfriday13 What do you want to happen if there are multiple peaks with the same value? Currently I will contain the first occurance of the maximum. –  Dennis Jaheruddin Jul 24 '13 at 10:11
    
@DennisJaheruddin if multiple peaks with the same value surface, i will take the value at the middle and plot.. what i mean by that is for example 1,1,1,4,4,4,2,2,2... i will take the '4' at the 5th position.. so the plot will be at the center of the graph u see.. –  myfriday13 Jul 25 '13 at 2:53

As alternative solution, you may evaluate the idea of using the built-in function findpeaks, which encompasses several methods to ascertain the existance of peaks within a given signal. Within thos methods you may call

findPeaks = findpeaks(data,'threshold',threshold_resolution);

The only limit I see is that findpeaks is only available with the Signal Processing Toolbox.

EDIT

In case of multiple peaks over the defined threshold, I would just call max to figure the highest peak, as follows

max(peaks);
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what if for example there are 4 peaks of same value? –  myfriday13 Jul 24 '13 at 1:36
    
@myfriday13: how do you define the highest peak? –  fpe Jul 24 '13 at 5:25
    
as in you can see that the code i have put up here, if value 'k' is greater than 'k+1' and 'k-1' then the 'k' is greater than the threshold set.. but this won't work anymore.. as at the near peak area, there may be values spiking so end up having lots of peaks.. and if you use median filter, you could even result in peaks that have the same value.. –  myfriday13 Jul 24 '13 at 8:57

Assuming you have a vector with peaks pbcg Here is how you can get the middle one:

highestPeakValue = max(pbcg)
f = find(pbcg == highestPeakValue);
middleHighestPeakLocation = f(ceil(length(f)/2))

Note that you can still make it more robust for cases where you have no peaks, and can adjust it to give different behavior when there are two middle peaks (now it will take the second one)

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Thanks @DennisJaheruddin ! –  myfriday13 Jul 26 '13 at 1:47

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