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I need assistance, actually I have a matrix b=2500x21, which is imaginary part of a FRF signal. I want to find peaks for every column, each column represents accelerometer response at different location of a beam. The following code i have written.
for i=1:21
pks(:,i)=findpeaks(b(:,i))
end
pks(:,i)=pks;
Problem is that, the matrix pks just stores last iteration value. I want that all the peak values after every iteration will be stored in a single matrix.
Can any body having suggestions?
8 Kommentare
madhan ravi
am 31 Aug. 2018
Bearbeitet: madhan ravi
am 31 Aug. 2018
Just format the code using the code button. So that it’s easy for others to read your code.
Walter Roberson
am 31 Aug. 2018
After your for loop, i will be left at its last value, 21. Then your final statement there would be equivalent to
pks(:,21) = pks;
which tries to store the entire pks array into a single location in the pks array. I am having difficulty coming up with any circumstance under which that could work without giving an error message.
I suspect that the for loop will generate an error, as most of the time the different columns of signal will lead to a different number of peaks being found, leading to errors when you tried to store the different vector lengths into the same array.
Stephen23
am 31 Aug. 2018
What is the purpose of this?:
pks(:,i)=pks;
Ayisha Nayyar
am 31 Aug. 2018
Ayisha Nayyar
am 31 Aug. 2018
Stephen23
am 31 Aug. 2018
Hi jonas, I have attached the file, now follow the code and see the results please.
for i=1:21
pks(:,i)=findpeaks(b(:,i))
end
pks(:,i)=pks;
Akzeptierte Antwort
As expected, your code returned the error
Unable to perform assignment because the size of the left side is 3-by-1 and the size of the right side is 6-by-1.
...because of reasons already listed multiple times in the comments.
You can solve this by storing the data in a cell array.
T=readtable('b.xlsx');
b=table2array(T);
pks=cell(21,1);
for i=1:21
pks{i}=findpeaks(b(:,i))
end
pks =
21×1 cell array
{6×1 double}
{6×1 double}
{6×1 double}
{6×1 double}
{7×1 double}
{6×1 double}
{5×1 double}
{7×1 double}
...
3 Kommentare
Ayisha Nayyar
am 31 Aug. 2018
No. You can access the peak values in the first column by:
pks{1}
ans =
1.0e-04 *
0.2180
0.0216
0.0040
0.0008
0.0001
-0.0000
As you can see, there are 6 values. Some peak values have extremely small prominence. You can adjust the 'MinPeakProminence' argument of findpeaks if you wish to exclude those.
Ayisha Nayyar
am 31 Aug. 2018
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