y =arctan
, y ' = ( )
a 
b 
c 
d 
y =arctan, y ' = ( )
a
b
c
d
设(x)=dfrac (1)(1-x), 求(x)=dfrac (1)(1-x)和(x)=dfrac (1)(1-x)设, 求和
设曲线L :y=√1-x^2(-1≤x≤1),则L :y=√1-x^2(-1≤x≤1)( ).设曲线,则( ).
函数=x+sqrt (1-x)的极值为( )=x+sqrt (1-x)=x+sqrt (1-x)=x+sqrt (1-x)=x+sqrt (1-
设(x)=dfrac (1-x)(1+x), 则(x)=dfrac (1-x)(1+x)设,则
=dfrac (sqrt {1+x)-sqrt (1-x)}(sqrt {1+x)+sqrt (1-x)}
(9) =dfrac (sqrt {1+x)-sqrt (1-x)}(sqrt {1+x)+sqrt (1-x)} ;
=(ln )^2(1-x),则=(ln )^2(1-x)________.,则________.
设 f(x) = (1-x cdot 2^1-x)/((2-x)(1-x)) (x neq 1, 2),若 f(x) 在 [1, 2] 上连续,则 f(1)f(
设y=dfrac(x{(1+x))^2}({(1-x))^3},则y=A. $\dfrac{6+x-{x}^{2}}{x-{x}^{3}}$B. $\dfrac
设 f(x) = (1-x cdot 2^1-x)/((2-x)(1-x)) (x neq 1,2),若 f(x) 在 [1,2] 上连续,则 f(1)f(2)