Answer:
probability of a pregnancy lasting 309 days is 0.0032
the length of pregnancy is in the lowest 4% is 241.74 days
Explanation:
Given data
mean = 268
standard deviation = 15
to find out
probability of a pregnancy lasting 309 days or longer and the length of pregnancy is in the lowest 4%
solution
we know mean (M) is 268 and standard deviation (SD) is 15
so probability will be in 1st part where pregnancy lasting 309 days
P(X > 309 ) = P( X− mean > 309 − mean )
we know
Z = (309 − mean) / standard deviation ,
it will be Z = 309−268/15 = 2.73
we can say these both are equal
P(X > 309 ) = P( Z > 2.73)
now we use the standard normal z-table i.e.
P( Z > 2.73 ) = 0.0032
so P( X > 309 ) is 0.0032
probability of a pregnancy lasting 309 days is 0.0032
and in 2nd part z value with 4% .i.e 0.04
z = -1.7507 from the standard table
so days = z × standard deviation + mean
days = -1.7507 × 15 + 268
days = 241.74
the length of pregnancy is in the lowest 4% is 241.74 days