Respuesta :
Answer:
[tex]n=(\frac{2.58(4.2)}{2})^2 =29.35 \approx 30[/tex]
So the answer for this case would be n=30 rounded up to the nearest integer
Step-by-step explanation:
Information given
[tex]ME = 2[/tex] the margin of error desired
[tex] \sigma =4.2[/tex] standard deviation from previous studies
The margin of error is given by this formula:
[tex] ME=z_{\alpha/2}\frac{\sigma}{\sqrt{n}}[/tex] (a)
And on this case we have that ME =2 and we are interested in order to find the value of n, if we solve n from equation (a) we got:
[tex]n=(\frac{z_{\alpha/2} \sigma}{ME})^2[/tex] (b)
The critical value for 99% of confidence interval now can be founded using the normal distribution. The significance level is [tex]\alpha=0.01[/tex] and the critical value would be [tex]z_{\alpha/2}=2.58[/tex], replacing into formula (b) we got:
[tex]n=(\frac{2.58(4.2)}{2})^2 =29.35 \approx 30[/tex]
So the answer for this case would be n=30 rounded up to the nearest integer
