9.9x99.99x9…有什么规律
举一反三
- 以下程序的运行结果为: 1. public class Conditional { 2. public static void main(String args [] ) { 3. int x = 4; 4. System.out.println( "value is " + 5. ((x > 4) ? 99.99 : 9)); 6. } 7. }
- 以4,9,1为为插值节点,求\(\sqrt x \)的lagrange的插值多项式 A: \( {2 \over {15}}(x - 9)(x - 1) + {3 \over {40}}(x - 4)(x - 1) + {1 \over {24}}(x - 4)(x - 9)\) B: \( - {2 \over {15}}(x - 9)(x - 1) + {3 \over {40}}(x - 4)(x - 1) + {1 \over {24}}(x - 4)(x - 9)\) C: \( - {2 \over {15}}(x - 9)(x - 1) + {3 \over {40}}(x - 4)(x +1) + {1 \over {24}}(x - 4)(x - 9)\) D: \( - {2 \over {15}}(x - 9)(x - 1) + {3 \over {40}}(x - 4)(x - 1) - {1 \over {24}}(x - 4)(x - 9)\)
- 表示x是5的倍数或是9的倍数的逻辑表达式为 ____。 A: x \ 5 = 0 Or x \ 9 = 0 B: x \ 5 = 0 And x \ 9 = 0 C: x Mod 5 = 0 Or x Mod 9 = 0 D: x Mod 5 = 0 And x Mod 9 = 0
- int x,y; x=9%5; y=9/5 则x=,y=。
- 用边界值分析法,假定10 A: X=11,X=29 B: X=9,X=10,X=30,X=31 C: X=10,X=30 D: X=9,X=31