若序列的Z变换是,则的Z变换为:()
A: X(z/7)
B: X(7z)
C: z-7X(z)
D: z7X(z)
A: X(z/7)
B: X(7z)
C: z-7X(z)
D: z7X(z)
举一反三
- int x,y,z; x=7; y=8; z=9; if(x>y) x=y; y=z; z=x; printf(“x=%d y=%d z=%d\n”,x,y,z);以上程序段的输出结果是:() A: x=7 y=8 z=9 B: x=7 y=9 z=7 C: x=8 y=9 z=7 D: x=8 y=9 z=8
- 【单选题】下面程序的运行结果是 () 。 void main() { int x=7,y=8,z=9; if(x>y) x=y,y=z; z=x; printf("x=%d y=%d z=%d ",x,y,z); } A. x=7 y=8 z=7 B. x=7 y=9 z=7 C. x=8 y=9 z=7 D. x=8 y=9 z=8
- 【单选题】已知序列x(n)的双边z变换为X(z),收敛域|z|>|a|,则x(-n)的双边z变换和收敛域为() A. X(-z),|z|>|a B. X(1/z),|z|>1/|a| C. X(1/z),|z|<1/|a| D. X(-z),|z|
- 已知()x()(()n())()的()z()变换是()X()(()z())(),()ROC()是()|()z()|()>()a(),则()x(()-()n()-()5())()的()z()变换和()ROC()是()()A.()()z()-()5()X()(1/()z()),z()>()1/()a()B.()()z()5()X()(1/()z()),z()>()1/()a()C.()()z()-()5()X()(1/()z()),z()<()1/()a()D.()()z()5()X()(1/()z()),z()<()1/()a
- 设 x=4,y=8,z=7,表达式x<y And (Not y>z) Or z<x的值是