Can anybody please give me the CODE for the below question in matlab?. urgently
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find and sketch the phase and magnitude of DTFT of X[n] sin(n*pi/6) over a period -2pi to 2pi
5 Comments
Wayne King
on 15 Nov 2013
Sounds very much like a homework problem; so you should try on your own and show people where you get stuck with your own MATLAB code.
nihal
on 15 Nov 2013
Umair Nadeem
on 15 Nov 2013
I'll give it a try and let you know
nihal
on 15 Nov 2013
Image Analyst
on 15 Nov 2013
You're supposed to tag your question as homework so you don't trick people into doing your homework for you. http://www.mathworks.com/matlabcentral/answers/8626-how-do-i-get-help-on-homework-questions-on-matlab-answers. I'll tag it for you.
Answers (1)
Umair Nadeem
on 15 Nov 2013
Edited: Umair Nadeem
on 15 Nov 2013
I tried it myself and I came up with this. I had to assume a few things but it works with what seems to be your problem. Hope it helps
clear all;
clc;
fs = 1000; % Assumed Sampling frequency
ts = 1/fs; % Sampling rate
n = (-360:360); % duration/index
% Assuming pi = 180 --> pi/6 = 30
% It gives the frequency of signal = 30 Hz
xn = sin(n * 30 * ts);
plot(n, xn)
title('Plot of Signal from -2pi to 2pi')
xlabel('Samples')
ylabel('Magnitude');
% Total duration of signal
dur = length(n);
% NFFT = Duration which can be represented in the power of 2
NFFT = 2 ^ nextpow2(dur);
% Compute Fast Fourier Transform using number of points = NFFT
xn_freq = (fft(xn, NFFT))/dur;
% Calculate the points of x-axis in frequency domain
x_axis = (fs/2) * linspace(0, 1, (NFFT/2) + 1);
figure (2);
subplot 211;
% Selecting half points (N/2+1) only because the other half is a replica
plot(x_axis, 2 * abs(xn_freq(1 : NFFT/2 + 1)));
max_mag = max(2 * abs(xn_freq(1 : NFFT/2 + 1)));
fprintf('Maximum Magnitude is = %f', max_mag);
xlim([-360 360])
grid on;
title('Magnitude of Frequency Domain Spectrum (Peak at Signal Frequency)');
xlabel('Frequency from -360 to 360 (Hz)');
ylabel('Magnitude');
% Computation of phase
xn_ph = unwrap(angle(xn_freq));
% Computation of horizontal points to correctly represent the data
f_dom = (0:length(xn_freq)-1)'/length(xn_freq) * fs;
subplot 212;
plot(f_dom, xn_ph);
grid on;
xlim([-360 360])
title('Phase of Frequency Domain Spectrum (Peak at Initial Phase)');
xlabel('Frequency from -360 to 360 (Hz)');
ylabel('Phase');
5 Comments
nihal
on 15 Nov 2013
Umair Nadeem
on 15 Nov 2013
There was a mistake in fprintf please correct it
nihal
on 15 Nov 2013
Umair Nadeem
on 17 Nov 2013
That was just a name for a variable for number of points of FFT, you can gve it any name you want.
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