Why are G1 and G2 outputs different?

3 次查看(过去 30 天)
clear
clc
Ts=0.0001;
kc=9000;
w0=400*2*pi;
z=tf('z',Ts);
QZ=(0.25+0.5*z^(-1)+0.25*z^(-2));
m=2;
kr=1;
RCZ=(kr*QZ*z^(-199+m)/(1-QZ*z^(-199)));
PI=(w0^2*(Ts*z)/(z-1)+2*w0);
Grc=((1+RCZ)*PI);
U1Y2=((z-1)*Grc)/(z-1+Ts*Grc);
U1Y1=kc*(Grc*Ts)/(z-1+Ts*Grc);
Gbot1=U1Y1+U1Y2
Gbot2=(((z-1)*Grc)+kc*(Grc*Ts))/(z-1+Ts*Grc)

回答(2 个)

VBBV
VBBV 2024-4-29
编辑:VBBV 2024-4-29
The order of mathematical operations in evaluating G1 and G2 are different. In case of G1 , individual terms are evaluated first and then added. In case if G2 , the numerator terms are added first and later divided by common denominator expression. You can try to use simplify function to verify that both results are essentially same.

宏伟 张
宏伟 张 2024-4-29
clear
clc
Ts=0.0001;
kc=9000;
w0=400*2*pi;
z=tf('z',Ts);
QZ=(0.25+0.5*z^(-1)+0.25*z^(-2));
m=2;
kr=1;
RCZ=(kr*QZ*z^(-199+m)/(1-QZ*z^(-199)));
PI=(w0^2*(Ts*z)/(z-1)+2*w0);
Grc=((1+RCZ)*PI);
U1Y2=((z-1)*Grc)/(z-1+Ts*Grc);
U1Y1=kc*(Grc*Ts)/(z-1+Ts*Grc);
Gbot3=(z*Grc-Grc+kc*Grc*Ts)/(z-1+Ts*Grc)

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