Finding x value at 10% of max y value, after the max

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Brett Ruben
Brett Ruben el 15 de Nov. de 2020
Comentada: Star Strider el 15 de Nov. de 2020
I am trying to find the x value at 90% of my max y value, after the peak. Below is something I have tried using other MATLAB Answers and recieved an error message for (probably because I am not modifying them correctly). I am also attaching a figure of my curves. In my code I am only looking at the first blue curve. It looks like I should get a value around 41 (mm). If I leave out the "*(9/10)", I get 39 which is just the peak, but I need to get to 90% of the peak. Please let me know if you could help! Thank you in advance!
"Depth" is my x data and "SeventyMeV" is my y data.
[TenthmaxYValue, indexAtMaxY] = max(SeventyMeV)*(9/10);
xValueAtMaxYValue = Depth(indexAtMaxY(1))

Respuestas (2)

ICR
ICR el 15 de Nov. de 2020
Editada: ICR el 15 de Nov. de 2020
% Find the max value for your data
maxVal = max(SeventyMeV);
maxVal90 = round(maxVal)*(9/10); % if you have enough datapoints remove round.
% Orelse you can use round or floor whichever suits you
[row,col] = find(SeventyMeV == maxVal90);
valAt90 = SeventyMeV(row(2)); % this will be your value of 90% after the peak
depthAt90 = depth(row);
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Brett Ruben
Brett Ruben el 15 de Nov. de 2020
Very odd, still saying the same thing. Also I changed the depth to Depth at the very end. Please let me know what you think.
ICR
ICR el 15 de Nov. de 2020
It could be coz the maxVal90 is not present in your seventyMeV.

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Star Strider
Star Strider el 15 de Nov. de 2020
It would be necessary to have a sample of your data to write specific code, so I will simply describe the procedure.
First, use findpeaks to find the peak values.
Second, use the ‘locs’ index values (second output of findpeaks) to determine the indices of the peaks.
Third, for each peak, use interp1 to interpolate the value you want, something such as:
v90(k) = interp1(y(locs(k)+[0 1]), x(locs(k)+[0 1]), 0.9*y(pks(k)), 'linear','extrap')
for each peak for k = 1:numel(locs).
I cannot figure out a way to simulate the missing data, so I am labeling this UNTESTED CODE. It should work, however it may need to be tweaked to work with your data.
  6 comentarios
Brett Ruben
Brett Ruben el 15 de Nov. de 2020
Hey, Star Strider, this seems to be working for only some of my data sets. I wonder if it is because I am working with discrete values and I can't grab the values that aren't there. I am assuming the interpolate function should take care of that, but it only seems to be working for some of the data sets. Some of them say NaN, and others throw an error. Is there a way that instead of simply using the plot() function, I can use a functin that will trace all of my points so that every x has a y value? Then I can use your suggestion? Let me know! I appreciate your help thus far!
Star Strider
Star Strider el 15 de Nov. de 2020
Again, this is a problem of not having your data to work with.
Solve the NaN probllems by adding 'extrap' to the interp1 call:
v90(k) = interp1(y(locs(k)+[0 1]), x(locs(k)+[0 1]), 0.9*y(locs(k)), 'linear','extrap') % X-Values At 90% After Peak
This may result in ‘interesting’ extrapolated values!
Another option (with or without 'extrap') is:
v90(k) = interp1(y(locs(k)+[0:2]), x(locs(k)+[0:2]), 0.9*y(locs(k)), 'linear') % X-Values At 90% After Peak
However without at least a sample of your data, I’m just left to guess as to what the probllems could be.
I leave it to you to experiment with these options.

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