Clinical trial tests a method designed to increase the probability of conceiving a girl. In the study, 340 babies were born, and 289 of them were girls. Use the sample data to construct a 99% confidence interval estimate of the percentage of girls born?

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Answer 1 · 2018-06-06T20:54:56

We are 99% confident that the true proportion of female babies is captured by the interval from #0.8001# to #0.8999#.

We want to estimate the proportion of female babies born.

We can use a one-proportion #z# interval with confidence level 99% if the following conditions are met:

Random: We must assume that the study uses a random sample of some population of babies born.
Independence/10% condition: We must assume that there are more than #340*10 = 3400 " babies"# in the sample.
Large/Normal: We must check that both #(hatp)(n)# and #(1- hatp)(n)# are greater than or equal to 10:
#(hatp)(n) = (.85)(340)=289 >=10#
#(1- hatp)(n) = (1-.85)(340) = 51 >=10#

#hatp = frac{289}{340} = .85#

The equation for a one-proportion z-interval is:
#hatp +- z"*" sqrt(frac{(hatp)(1- hatp)}{n})#

Use the table of standard normal probabilities to find # z"*" #.
To find #z#, we want the area to the left to have a probability of #(1-.99)/2 = 0.005#

We get:
#z"*" = 2.5758#

Substitute values into the formula:
#0.85 +- (2.5758) sqrt(frac{(.85)(.15)}{340})#

#0.85 +- 0.0499#

Confidence interval: #[0.8001, 0.8999]#

We are 99% confident that the true proportion of female babies is captured by the interval from #0.8001# to #0.8999#.