Mary is certainly one of medical doctor Brown's patients. She has carried out a domestic pregnancy take a look at which has given a high quality end result. what's the possibility that the pregnancy take a look at used by doctor Brown in his surgical procedure will say Mary is pregnant given that the home check became nice? Home pregnancy test is 85% accurate Doctor Brown pregnancy test is 95% accurate 20 females are pregnant and 80 females are not

piopiopioirp

piopiopioirp

Answered question

2022-11-05

Mary is certainly one of medical doctor Brown's patients. She has carried out a domestic pregnancy take a look at which has given a high quality end result. what's the possibility that the pregnancy take a look at used by doctor Brown in his surgical procedure will say Mary is pregnant given that the home check became nice?
Home pregnancy test is 85% accurate
Doctor Brown pregnancy test is 95% accurate
20 females are pregnant and 80 females are not

Answer & Explanation

Teagan Raymond

Teagan Raymond

Beginner2022-11-06Added 14 answers

Strictly speaking, you don't have enough information to solve this. Here's how I'd approach it.
Let X be the random variable which is 1 if the home test is positive and 0 otherwise. Similarly let Y = 1 if Dr. Brown's test is positive, and let P=1 if Mary is actually pregnant. We want the conditional probability P r ( Y = 1 X = 1 ). Write
P r ( Y = 1 X = 1 ) = P r ( X = 1 Y = 1 ) / P r ( X = 1 ) = P r ( X = 1 Y = 1 P = 1 ) P r ( P = 1 ) + P r ( X = 1 Y = 1 P = 0 ) P r ( P = 0 ) P r ( X = 1 P = 1 ) P r ( P = 1 ) + P r ( X = 1 P = 0 ) P r ( P = 0 ) .
If we're willing to assume X and Y are independent given P, we can write
P r ( X = 1 Y = 1 P = 1 ) = P r ( X = 1 P = 1 ) P r ( Y = 1 P = 1 ) . This may be a reasonable assumption if Dr. Brown's test works on different principles than the home test, but it might not. Given that assumption, this gives an answer of
( 0.85 ) ( 0.95 ) ( 0.2 ) + ( 0.15 ) ( 0.05 ) ( 0.8 ) 0.85 ) ( 0.2 ) + ( 0.15 ) ( 0.8 ) 0.56

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