[1097]有半径为[tex=4.357x1.0]I3UXhv4UvARPmg87bNFXtuH4FbjMya9txsmenB1YIvE=[/tex]及圆心角[tex=2.857x1.071]8b+QXU+cRVRpa3PN2+AqHxzlDADWV22HGfO0gD0x3bU=[/tex]的扇形.若(1)其半径R增加1cm; (2)角[tex=0.643x0.786]SPoVA3bJlgfP9Ek9O4AbuA==[/tex]减小30’,则扇形面积的变化如何?求出精确的和近似的解.
举一反三
- 扇形中心角[tex=2.857x1.071]8b+QXU+cRVRpa3PN2+AqHxzlDADWV22HGfO0gD0x3bU=[/tex],半径后[tex=3.857x1.0]y2RufaDVQUGCnQ3RVyrZhgWtdmQbyKaUTMHfbUl6bJY=[/tex],若将[tex=0.643x0.786]SPoVA3bJlgfP9Ek9O4AbuA==[/tex]增加1°要使扇形面积不变,应把扇形的半径R减少多少?
- 设圆扇形半径[tex=4.357x1.0]273UtljCwrok/0gOXEYiSQ==[/tex],圆心角[tex=2.857x1.071]z7opkeLRldjTaMX1PsKn0NKYP4nY39x0UQ624967pgs=[/tex],若(1)半径增加[tex=1.857x1.0]TmLQGY6wtSIgh+Vcg/MDaw==[/tex],[tex=0.643x0.786]W9TCskxkagdDgWMvasdFzg==[/tex]不变;(2)角[tex=0.643x0.786]hlJJ6/DUY+n2/FE6M2JdRA==[/tex]减少[tex=1.286x1.143]nbMdVl1KH2DMpcjqxubf9w==[/tex],[tex=0.786x1.0]as0RCzgUx1oS48cKHRAVVg==[/tex]不变.问扇形面积各近似改变多少?
- 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: \( - {2 \over {15}}(x - 9)(x - 1) + {3 \over {40}}(x - 4)(x - 1) - {1 \over {24}}(x - 4)(x - 9)\)
- 已知[tex=10.786x1.357]oPxEQGciaJq0uWonaJqXssvTKx2aAMqoshLd51U2O4M=[/tex],若[tex=2.0x1.214]IENxQEh5u4RdnCaqHm72Xg==[/tex]相互独立,则[tex=3.0x1.357]cl60lRnHnAb2Fyha9FYNvw==[/tex] A: 1/2 B: 1/3 C: 2/3 D: 3/4
- 以下程序的输出结果是() main( ) { int i , x[3][3]={9 , 8 , 7 , 6 , 5 , 4 , 3 , 2 , 1} , *p=&x[1][1] ; for(i=0 ; i<4 ; i+=2) printf("%d " , p[i]) ;