设二维随机变量(x,y)的概率密度函数为 f(x,y)={ Asin(x+y), 0
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设二维随机变量(x,y)的概率密度函数为 f(x,y)={ Asin(x+y), 0
设二维随机变量(x,y)的概率密度函数为 f(x,y)={ Asin(x+y), 0
设二维随机变量(x,y)的概率密度函数为 f(x,y)={ Asin(x+y), 0
根据概率密度函数的积分=1,可以算出A的值.即:∫ ∫ f(x,y) dx dy = 1 (∫ 均从-∞积分到+∞).
则从题中已知条件可得,
+∞ π/2
∫ ∫ f(x,y) dx dy = ∫ ∫ A sin(x+y) dx dy (x,y 均从0到π/2积分)
-∞ 0
π/2
= A ∫ -[cos(π/2+y) - cos(0+y)] dy
0
π/2
= A ∫ [sin(y) + cos(y)] dy
0
= A [cos0 - cos(π/2) + sin(π/2) - sin0]
= 2A = 1
所以 A = 1/2.
f(x,y) = 1/2 sin(x+y),...
+∞
x的边缘分布密度 fX(x) = ∫ f(x,y) dy
-∞
π/2
= 1/2 ∫ sin(x+y) dy
0
= 1/2 [-cos(x+π/2) + cos(x+0)]
= 1/2 [sin(x) + cos(x)]
+∞
同理可以算得y的边缘分布密度 fY(y) = ∫ f(x,y) dx
-∞
π/2
= 1/2 ∫ sin(x+y) dx
0
= 1/2 [-cos(y+π/2) + cos(y+0)]
= 1/2 [sin(y) + cos(y)]
对于x不在 [0,π/2],y不在 [0,π/2]的,都等于0.
难倒不难,就是麻烦,呵呵
根据概率密度函数的积分=1,可以算出A的值。即:∫ ∫ f(x,y) dx dy = 1 (∫ 均从-∞积分到+∞)。
则从题中已知条件可得,
+∞ π/2
∫ ∫ f(x,y) dx dy = ∫ ∫ A sin(x+y) dx dy (x,y 均从0到π/2积分)
-∞ 0
...
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根据概率密度函数的积分=1,可以算出A的值。即:∫ ∫ f(x,y) dx dy = 1 (∫ 均从-∞积分到+∞)。
则从题中已知条件可得,
+∞ π/2
∫ ∫ f(x,y) dx dy = ∫ ∫ A sin(x+y) dx dy (x,y 均从0到π/2积分)
-∞ 0
π/2
= A ∫ -[cos(π/2+y) - cos(0+y)] dy
0
π/2
= A ∫ [sin(y) + cos(y)] dy
0
= A [cos0 - cos(π/2) + sin(π/2) - sin0]
= 2A = 1
所以 A = 1/2。
f(x,y) = 1/2 sin(x+y), ...
+∞
x的边缘分布密度 fX(x) = ∫ f(x,y) dy
-∞
π/2
= 1/2 ∫ sin(x+y) dy
0
= 1/2 [-cos(x+π/2) + cos(x+0)]
= 1/2 [sin(x) + cos(x)]
+∞
同理可以算得y的边缘分布密度 fY(y) = ∫ f(x,y) dx
-∞
π/2
= 1/2 ∫ sin(x+y) dx
0
= 1/2 [-cos(y+π/2) + cos(y+0)]
= 1/2 [sin(y) + cos(y)]
对于x不在 [0,π/2],y不在 [0,π/2]的,都等于0。
收起
回答:
因∬Asin(x+y)dxdy = 2A = 1,故A=1/2。
分别对x和y在给定区域上积分,得
f_X(x) = ∫{0, π/2}(1/2)sin(x+y)dy = (1/2)[cos(x)-cos(x+π/2)];
f_Y(y) = ∫{0, π/2}(1/2)sin(x+y)dx = (1/2)[cos(y)-cos(π/2+y)].