how to see the frequency response of difference equation

26 vues (au cours des 30 derniers jours)
moonman
moonman le 15 Déc 2011
Commenté : Mike Shane le 27 Juil 2023
Hi I am having the difference equation
y[n] = -0.9y[n-1] +x [n] -x [n-1]
I want to see its frequency response. What should i do
should i first convert it into Z-Form and then proceede Any ideas how to go abt it

Connectez-vous pour répondre à cette question.

Réponse acceptée

Wayne King
Wayne King le 15 Déc 2011
You can do the following:
W = -pi:(2*pi)/8192:pi;
[H,W] = freqz([1 -1],[1 0.9],W);
plot(W,abs(H));
  4 commentaires
Afficher 2 commentaires plus anciens
Boom
Boom le 7 Août 2016
How did you get [1 0.9]? Why 1? and why 0.9? I see the equation has a negative 0.9, but not positive 0.9. Thanks
Mike Shane
Mike Shane le 27 Juil 2023
I hope by now you've figured it out, but for those who have the same question here is a simple explanation
y[n] = -0.9y[n-1] +x [n] -x [n-1] is the origianl expression
you have to put y terms on one side and x terms on one side, as below
y[n] + 0.9y[n-1] = x[n] -x[n-1]
now you can take the coefficients of y and x correctly, otherwise you are making a mistake while taking the coefficients
after that you'll get the below,
y has [1 0.9]
x has [1 -1]

Connectez-vous pour commenter.

Plus de réponses (4)

Wayne King
Wayne King le 15 Déc 2011
Hi, here you go. If you want to visualize the magnitude:
fvtool([1 -1],[1 0.9]);
If you want the complex-valued response:
[H,W] = freqz([1 -1],[1 0.9]);
plot(W,abs(H));
  2 commentaires
moonman
moonman le 15 Déc 2011
Hi king thanks
i have plotted it and changed the scale as well in fvtool but not getting the desired option
I have uploaded question here
can u kindly review it
http://www.4shared.com/photo/Y3A4z6qx/question.html
Thanks a lot
moonman
moonman le 15 Déc 2011
plz guide me

Connectez-vous pour commenter.

Wayne King
Wayne King le 15 Déc 2011
Hi, that's because your graphs are showing the frequency response over [-pi,pi). You can use the 'whole' option in freqz()
[H,W] = freqz([1 -1],[1 0.9],'whole');
plot(W,abs(H));
moonman
moonman le 15 Déc 2011
When i plot by this
[H,W] = freqz([1 -1],[1 0.9],'whole');
W = W-pi;
plot(W,abs(H));
I sm getting the peak magnitude of 20 where as in all options peak is 20. why its so
Anyhow as per ur direction Option 'A' is correct am i right?
  4 commentaires
Afficher 2 commentaires plus anciens
Wayne King
Wayne King le 15 Déc 2011
the book is wrong, the frequency response in magnitude should be 20 at pi radians/sample and -pi radians/sample
moonman
moonman le 15 Déc 2011
Thanks king for explaining me
So the answer is 'A'. Am i right
but one of my frd has solved it and he is saying answer is D
and in email he wrote me
answer would be D as the value of H(0) = 0
Is he wrong.Plz tell me

Connectez-vous pour commenter.

moonman
moonman le 15 Déc 2011
Thanks a lot King People on forum say that i only accept the answer of Wayne King U always explain in such a nice manner and move with me in question till the time i m not satisfied Thanks a lot and may God give u more knowledge so that u can enlighten more people

Catégories

En savoir plus sur Digital Filter Analysis dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by