平面π1 : x−y+2z−6=0与π2 : 2x+y+z−5=0的夹角为
举一反三
- 4.已知二元函数$z(x,y)$满足方程$\frac{{{\partial }^{2}}z}{\partial x\partial y}=x+y$,并且$z(x,0)=x,z(0,y)={{y}^{2}}$,则$z(x,y)=$( ) A: $\frac{1}{2}({{x}^{2}}y-x{{y}^{2}})+{{y}^{2}}+x$ B: $\frac{1}{2}({{x}^{2}}{{y}^{2}}+xy)+{{y}^{2}}+x$ C: ${{x}^{2}}{{y}^{2}}+{{y}^{2}}+x$ D: $\frac{1}{2}({{x}^{2}}y+x{{y}^{2}})+{{y}^{2}}+x$
- 过点(1, -2, -2)且与平面x -2 y + 3z = 2平行的平面方程为 A: x -2 y + z = 6; B: x -2y + 3z = 0; C: x -2y + 3z = 0; D: 2x - y + 3z = 9.
- 设\(f\left( {x,y,z} \right) = x{y^2} + y{z^2} + z{x^2}\),则\({f_{yz}}\left( {0,-1,0} \right) = \)( ) A: 1 B: 0 C: -1 D: 2
- 以下程序的输出结果是( )。 main() { int x = 2, y = -1, z = 2; if (x < y) if (y < 0) z = 0; else z + = 1; printf("%d \n",z); }
- int x=1, y=2, z=0; z= x > y ? x+y : x; 则z= ( )