The principal of a large school claims that the average distance from a student’s home to the school is 3.5 km - Leaving Cert Mathematics - Question 2 - 2015

Given that 20% of the 60 students live within 2.5 km:

Sample Proportion (ar{p}): 0.2 Sample Size (n): 60

The confidence interval is calculated as follows:

egin{align*} CI & = ar{p} ext{ ± } Z imes ext{SE}
ext{where } ext{SE} & = ext{√}rac{ar{p}(1 - ar{p})}{n} = ext{√}rac{0.2(0.8)}{60} ext{ = } 0.0646
Z & = 1.96 ext{ for 95% confidence} \end{align*}

Thus the confidence interval is:

egin{align*} (0.2 - 1.96 imes 0.0646, 0.2 + 1.96 imes 0.0646) & = (0.0988, 0.3012) \end{align*}

95% Confidence Interval: (0.0988, 0.3012)

Null Hypothesis (H₀): The proportion of students living within 2.5 km is 26% (0.26)

Alternative Hypothesis (H₁): The proportion of students living within 2.5 km is different from 26% (0.26)

We calculate the z-score:

egin{align*} ext{Sample Proportion} (ar{p}) & = 0.2
ext{SE} & = ext{√}rac{0.26(1 - 0.26)}{60} = 0.061 \text{Z} & = rac{0.2 - 0.26}{0.061} = -0.98
\end{align*}

At the 5% level of significance, the rejection region is between -1.96 and 1.96. Since -0.98 does not fall in this range, we cannot reject the null hypothesis. Thus, we cannot conclude that the proportion of students living within 2.5 km has changed.

To estimate the proportion with 95% confidence and a margin of error (E) of 10% (0.1):

The formula for sample size is:

egin{align*} n & = rac{Z^2 imes p(1 - p)}{E^2}
ext{Using } p = 0.5 ext{ (most conservative estimate)}:
n & = rac{(1.96)^2 imes 0.5(0.5)}{(0.1)^2} = rac{(3.8416) imes 0.25}{0.01}
& = 96.04
\end{align*}

Thus the minimum sample size necessary is 97 (rounded up).