跪求此数理统计题的解答过程,万分感谢
设二维随机变量(X,Y)的概率密度是f(x)=1/8(x+y),0<=x<=2,0<=y<=2求①P{X<=1,Y<=1}②P{X+Y<=3}麻烦高手帮帮忙写出详细解答过...
设二维随机变量(X,Y)的概率密度是f(x)=1/8(x+y),0<=x<=2,0<=y<=2 求①P{X<=1,Y<=1} ②P{X+Y<=3} 麻烦高手帮帮忙写出详细解答过程,谢谢 满意加分
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2011-01-13
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(1)P(X<=1,Y<=1)=∫[0,1]dx∫[0,1]1/8(x+Y)dy
=∫[0,1](1/8*x+/16)dx
=1/8
(2)P(X+Y<=3)==1-P(X+Y>3)
=1-∫[1,2]dx∫[3-x,2]1/8(x+Y)dy
=1-∫[1,2][1/8(2x+2)-1/8x(3-x)-1/16(3-x)^2]dx
=1/2
=∫[0,1](1/8*x+/16)dx
=1/8
(2)P(X+Y<=3)==1-P(X+Y>3)
=1-∫[1,2]dx∫[3-x,2]1/8(x+Y)dy
=1-∫[1,2][1/8(2x+2)-1/8x(3-x)-1/16(3-x)^2]dx
=1/2
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