设集合A= x|-dfrac {1)(2)lt xlt 2} , B=(x|x2≤1), 则A∪B=( )
(2009北京, 1, 5分)设集合A=
, B={x|x2≤1}, 则A∪B=( )
A. {x|-1≤x<2} B. 
C. {x|x<2} D. {x|1≤x<2}
参考答案与解析:
-
相关试题
-
设(x)=((2-x))^tan dfrac (pi {2)x},(dfrac (1)(2)lt xlt 1),求(x)=((2-x))^tan dfrac (pi {2)x},(dfrac (1)(
-
设(x)=((2-x))^tan dfrac (pi {2)x},(dfrac (1)(2)lt xlt 1),求(x)=((2-x))^tan dfrac (
- 查看答案
-
1.设 (dfrac (1)(x))=x((dfrac {x)(x+1))}^2, 则 f(x)= ()-|||-(A) dfrac (1)(x)((dfrac {1)(x+1))}^2 (B) ((
-
1.设 (dfrac (1)(x))=x((dfrac {x)(x+1))}^2, 则 f(x)= ()-|||-(A) dfrac (1)(x)((dfrac
- 查看答案
-
设集合A=(-2,-1,0,1,2),B=(x|0≤x<(5)/(2)),则A∩B=( )
-
设集合A=(-2,-1,0,1,2),B=(x|0≤x<(5)/(2)),则A∩B=( )A. {0,1,2}B. {-2,-1,0}C. {0,1}D. {
- 查看答案
-
设集合A=(x|x2-4≤0),B=(x|2x+a≤0),且A∩B=(x|-2≤x≤1),则a=( )
-
设集合A=(x|x2-4≤0),B=(x|2x+a≤0),且A∩B=(x|-2≤x≤1),则a=( )A. -4B. -2C. 2D. 4
- 查看答案
-
设X1,X2是来自总体X1,X2的样本,设X1,X2,则X1,X2.A.4B.8C.16D.20E.32
-
设X1,X2是来自总体X1,X2的样本,设X1,X2,则X1,X2.A.4B.8C.16D.20E.32设是来自总体的样本,设,则.A.4B.8C.16D.20
- 查看答案
-
2.设随机变量X的密度函数为 f(x)= )=dfrac {7)(8)-|||-求:(1)常数a,b (2) (dfrac (1)(2)lt Xlt dfrac (3)(2))-|||-(3)X的
-
2.设随机变量X的密度函数为 f(x)= )=dfrac {7)(8)-|||-求:(1)常数a,b (2) (dfrac (1)(2)lt Xlt dfr
- 查看答案
-
设 lim _(xarrow 0)dfrac (ln (1+x)-(ax+b{x)^2)}({x)^2}=2, 则设 lim _(xarrow 0)dfrac (ln (1+x)-(ax+b{x)^2
-
设 lim _(xarrow 0)dfrac (ln (1+x)-(ax+b{x)^2)}({x)^2}=2, 则设 lim _(xarrow 0)dfrac
- 查看答案
-
4.设总体 sim N(mu ,(sigma )^2), x1,x2,x3为来自X的样本 hat (mu )=dfrac (1)(4)(x)_(1)+b(x)_(2)+dfrac (1)(2)(x)_
-
4.设总体 sim N(mu ,(sigma )^2), x1,x2,x3为来自X的样本 hat (mu )=dfrac (1)(4)(x)_(1)+b(x)_
- 查看答案
-
设函数=dfrac ({x)^2}(x-1),则=dfrac ({x)^2}(x-1)=________.
-
设函数=dfrac ({x)^2}(x-1),则=dfrac ({x)^2}(x-1)=________.设函数,则=________.
- 查看答案
-
(B) dfrac (1)(2)(X)_(1)+dfrac (1)(2)(X)_(2)-|||-(C) dfrac (1)(2)(X)_(1)+dfrac (1)(3)(X)_(2)+dfrac (1
-
(B) dfrac (1)(2)(X)_(1)+dfrac (1)(2)(X)_(2)-|||-(C) dfrac (1)(2)(X)_(1)+dfrac (1
- 查看答案