将函数f(z)=1/(1+z^2),0
举一反三
- 设 z=z(x,y)z=z(x,y) 是由方程 ez−xyz=0ez−xyz=0 确定的函数, 则 ∂z∂x= A: zx(z−1)zx(z−1) B: yx(1+z)yx(1+z) C: z1+zz1+z D: yx(1−z)yx(1−z)
- 调用下面函数,错误的是( )。def f(x, y = 0, z = 0): pass #空语句,定义空函数体 A: f(z = 3, x = 1, y = 2) B: f(1, x = 1, z = 3) C: f(1, y = 2, z = 3) D: f(1, z = 3)
- 执行下面代码,错误的是def f(x, y = 0, z = 0): pass # 空语句,定义空函数体 A: f(1, x = 1, z = 3) B: f(z = 3, x = 1, y = 2) C: f(1, z = 3) D: f(1, y = 2, z = 3)
- 因果信号f(k)的像函数 A: |z|>2 B: |z|>1 C: |z|<1 D: 1<|z|<2
- 若|z|=1,argz=θ,(θ≠0),则z+z的共轭/1+z^2的辐角主值