Butter filter high pass and low pass

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Emma Pearce
Emma Pearce on 29 Jan 2018
Answered: Star Strider on 29 Jan 2018
Hi,
when using the butter filter i can see that for the low pass if i set my cut off frequency to 100hz then anything above this is removed, as shown by the first image.
If i then use the 'high' filter, rather than allowing evrything above 100hz it allows everything above 50hz. I've not changed anything in the code other that 'low' to 'high. Image 2 shows this.
my code is,
sampling_frequency = 1600;
cutoff_f = 100;
[b,a] = butter(9,cutoff_f/(sampling_frequency/2),'low'); %i change this to 'high'
freqz(b,a)
i plot them the same way using:
dataIn = comparison_trace;
dataOut = filter(b,a,dataIn);
NFFT = 2^nextpow2(length(dataOut));
y = fft(dataOut, NFFT);
f = sampling_frequency*(0:(NFFT/2))/NFFT;
AMP = abs(y/NFFT);
PHA = angle(y);
NFFT2 = 2^nextpow2(length(comparison_trace));
y2 = fft(comparison_trace, NFFT2);
f2 = sampling_frequency*(0:(NFFT2/2))/NFFT2;
AMP2 = abs(y2/NFFT2);
PHA2 = angle(y2);
figure; subplot(2,1,2); plot(f,AMP(1:NFFT/2+1));
title('amp spec of data out')
xlabel('frequ (Hz)')
ylabel('amp')
subplot(2,1,1); plot(f2,AMP2(1:NFFT2/2+1));
title('amp spec of raw data')
xlabel('frequ (Hz)')
ylabel('amp')
Thanks!

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Accepted Answer

Star Strider
Star Strider on 29 Jan 2018
I believe you are seeing the ‘rolloff’ or transition-region characteristics of a Butterworth filter. Note that you did not specify the stopband, only the passband. Start with the buttord function, define the stopband as well as the passband, and you will likely see a filter response closer to what you expect. (Also consider using a Chebyshev Type II design.)

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