Of 136 randomly selected adults, 33 were found to have high blood pressure. Construct a 95% confidence interval for the true of all adults that have high blood pressure.

Question

asked Sep 9, 2021 34.9k views

1 Answer

Jjkparker · Answer 1 · 2021-09-13T18:10:47+0000

Answer:

The 95% confidence interval of the proportion of all adults that have high blood pressure is 0.17059 <
$\hat{p}$ < 0.314695

Explanation:

The confidence interval for a proportion is given by the following formula;

$CI=\hat{p}\pm z* \sqrt{\frac{\hat{p}(1-\hat{p})}{n}}$

Where:

x = 33

n = 136

$\hat{p}$ = x/n = 33/136 = 0.243

z value for 95% confidence is 1.96

Plugging in the values, we have;

$CI=0.243\pm 1.96* \sqrt{(0.243(1-0.243))/(136)}$

Which gives;

0.17059 <
$\hat{p}$ < 0.314695

Hence the 95% confidence interval of the proportion of all adults that have high blood pressure = 0.17059 <
$\hat{p}$ < 0.314695

From the above we have;

23.2 < x < 42.798

Since we are dealing with people, we round down as follows;

23 < x < 42.