计算(1)(-2y3)2+(-4y2)3-(-2y)2•(-3y2)2;
举一反三
- MATLAB 命令 data=[1 4 2 4 4 1 2 3 1 3]; y=hist(data,4),其结果为 A: y=4 1 2 3 B: y=3 2 2 3 C: y=3 2 3 2 D: y=4 2 1 1
- 已知点()(()-()1(),()y()1())(),()(2(),()y()2())(),()(()-()3(),()y()3())()都在函数()y()=()x()2()的图象上,则()()A.()y()1()<()y()2()<()y()3()B.()y()1()<()y()3()<()y()2()C.()y()3()<()y()2()<()y()1()D.()y()2()<()y()1()<()y()3
- 应用Matlab软件计算行列式[img=110x88]17da5d7b00219d6.png[/img]为( ). A: x^2 - 6*x^2*y^2 + 8*x*y^3 - 3*y^4 B: x^3 - 6*x^2*y^2 + 8*x*y^3 - 3*y^4 C: x^4 - 6*x^2*y^2 + 8*x*y^3 - 3*y^4 D: x^5- 6*x^2*y^2 + 8*x*y^3 - 3*y^4
- 若x=[1 2 3 4 5];y=[2 -1 4 3 -2];则z=x.*y=()
- 以点(1,3,−2)为球心,且通过坐标原点的球面方程为() A: (x−1)2+(y−3)2+(z+2)2=14 B: (x−1)2+(y−3)2+(z−2)2=14 C: x2+y2+z2=14 D: (x−1)2+(y−3)2+(z+2)2=2