Given X1,…,X100 and Y1,…,Y50 which are independent random samples from identical distribution N(μ,1). Each of two statisticians is trying to build confidence interval for μ on a confidence level of 0.8 1−α=0.8. You have to find probability that those intervals are disjoint. I know i have to find P(|X―−Y―|&gt;1⋅1.2850+1⋅1.28100) which is 1−P(−0.309≤X―−Y―≤0.309)Question is what should i do next how to calculate this probability?

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Given X1,…,X100 and Y1,…,Y50 which are independent random samples from identical distribution N(μ,1). Each of two statisticians is trying to build confidence interval for μ on a confidence level of 0.8 1−α=0.8. You have to find probability that those intervals are disjoint. I know i have to find P(|X―−Y―|&amp;gt;1⋅1.2850+1⋅1.28100) which is 1−P(−0.309≤X―−Y―≤0.309)Question is what should i do next how to calculate this probability?

Drahthaare89c · Accepted Answer

Step 1One interval has endpoints&amp;nbsp;X―±1.28d1100&amp;nbsp;and the otherY―±1.28d150.The intervals are disjoint if&amp;nbsp;X―+1.28d1100&amp;lt;Y―−1.28d150&amp;nbsp;or&amp;nbsp;Y―+1.28d150&amp;lt;X―−1.28d1100.That happens if&amp;nbsp;Y―−X―&amp;lt;1.28(d1100+d150)&amp;nbsp;or&amp;nbsp;X―−Y―&amp;gt;1.28(d1100+d150).&amp;nbsp;In other words|X―−Y―|&amp;gt;1.28(d1100+d150).This is equivalent to|X―−Y―|d1100+d150&amp;gt;1.28.You have&amp;nbsp;X―−Y―∼N(0,d1100+d150)=N(0,d3100),&amp;nbsp;so thatX―−Y―3100∼N(0,1).standard&amp;nbsp;deviation(X¯-Y¯1100+150)=standard&amp;nbsp;deviation(X¯-Y¯)1100+150[10pt]={dd3100d1100+d150=31+2=6−3So,Pr(|X―−Y―|d1100+d150&amp;gt;1.28)=Pr(||X―−Y―|d1100+d150|t6−3&amp;gt;1.286−3)[10pt]={Pr(|Z|&amp;gt;1.286−3)&amp;nbsp;&amp;nbsp;where&amp;nbsp;&amp;nbsp;Z∼N(0,1)If the variance were unknown but the variances of the two populations were equal then we would be working with a t-distribution.

Given \(\displaystyle{X}_{{1}},\ldots,{X}_{{{100}}}\) and \(\displaystyle{Y}_{{1}},\ldots,{Y}_{{{50}}}\) which are

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