Respuesta :
Answer:
Proportion of women having blood pressures between 88.1 and 89.4 is 3.99% or close to 4%.
Step-by-step explanation:
We are given that a recent study reported that diastolic blood pressures of adult women in the United States are approximately normally distributed with mean 80.3 and standard deviation 8.6.
Let X = blood pressures of adult women in the United States
So, X ~ N([tex]\mu=80.3,\sigma^{2} =8.6^{2}[/tex])
The z score probability distribution is given by;
Z = [tex]\frac{X-\mu}{\sigma}[/tex] ~ N(0,1)
where, [tex]\mu[/tex] = population mean
[tex]\sigma[/tex] = population standard deviation
So, Probability that women have blood pressures between 88.1 and 89.4 is given by = P(88.1 < X < 89.4) = P(X < 89.4) - P(X [tex]\leq[/tex] 88.1)
P(X < 89.4) = P( [tex]\frac{X-\mu}{\sigma}[/tex] < [tex]\frac{89.4-80.3}{8.6}[/tex] ) = P(Z < 1.05) = 0.85314
P(X [tex]\leq[/tex] 88.1) = P( [tex]\frac{X-\mu}{\sigma}[/tex] [tex]\leq[/tex] [tex]\frac{88.1-80.3}{8.6}[/tex] ) = P(Z [tex]\leq[/tex] 0.89) = 0.81327
Therefore, P(88.1 < X < 89.4) = 0.85314 - 0.81327 = 0.0399 or approx 4%
Hence, proportion of women have blood pressures between 88.1 and 89.4 is 4%.
