Answer:
Sample size should be atleast 625
Step-by-step explanation:
Given that the Labor Bureau wants to estimate, at a 90% confidence level, the proportion of all households that receive welfare
Sample proportion = 17.5%
Let n be the sample size
Standard error of sample proportion= [tex]\sqrt{\frac{pq}{n} } =\sqrt{\frac{0.175*0.825}{n} }[/tex]
Z critical for 90% = 1.645
Margin of error = 1.645 * std error
Since margin of error<0.025 we have
[tex]1.645*\sqrt{\frac{0.175*0.825}{n} }<0.025\\0.625046/0.025 <\sqrt{n} \\n>625[/tex]
