Chapter 9 - Section 9.1 - Assess Your Understanding - Applying the Concepts - Page 438: 37b

$n=1068$

$level~of~confiance=(1-α).100$% $95$% $=(1-α).100$% $0.95=1-α$ $α=0.05$ $z_{\frac{α}{2}}=z_{0.025}$ If the area of the standard normal curve to the right of $z_{0.025}$ is 0.025, then the area of the standard normal curve to the left of $z_{0.025}$ is $1−0.025=0.975$ According to Table V, the z-score which gives the closest value to 0.975 is 1.96. Now, the sample size (no prior estimate of $p ̂$) : $E=0.03$ (within 3 percentage points) $n=0.25(\frac{z_{\frac{α}{2}}}{E})^2$ $n=0.25(\frac{1.96}{0.03})^2$ $n=1067.11$ Round up: $n=1068$