Save \& Exit Certify Lesson: 8.3 Estimating Population Means (... Question 8 of 10, Step 4 of 4 A certain test preparation course is designed to help students improve their scores on the GRE exam. A mock exam is given at the beginning and end of the course to determine the effectiveness of the course. The following measurements are the net change in 7 students' scores on the exam after completing the course: \( 24,6,21,8,16,10,18 \) Using these data, construct a \( 80 \% \) confidence interval for the average net change in a student's score after completing the course. Assume the population is approximately normal. Step 4 of 4 : Construct the \( 80 \% \) confidence interval. Round your answer to one decimal place.

To construct an \(80\%\) confidence interval for the average net change in scores, we first need to calculate the sample mean and standard deviation from the given data: Net changes: \(24, 6, 21, 8, 16, 10, 18\) 1. **Calculate the sample mean (\( \bar{x} \)):** \[ \bar{x} = \frac{24 + 6 + 21 + 8 + 16 + 10 + 18}{7} = \frac{103}{7} \approx 14.7 \] 2. **Calculate the sample standard deviation (\( s \)):** \[ s = \sqrt{\frac{\sum (x_i - \bar{x})^2}{n-1}} \] After performing this calculation, we find \( s \approx 6.83\). 3. **Determine the critical value (\( t^* \)) for an \(80\%\) confidence level with \(6\) degrees of freedom. The \( t^* \) value is approximately \(1.440\). 4. **Calculate the margin of error:** \[ E = t^* \cdot \frac{s}{\sqrt{n}} = 1.440 \cdot \frac{6.83}{\sqrt{7}} \approx 1.440 \cdot 2.58 \approx 3.7 \] 5. **Construct the confidence interval:** \[ \text{Confidence interval} = \left( \bar{x} - E, \bar{x} + E \right) = (14.7 - 3.7, 14.7 + 3.7) = (11.0, 18.4) \] Thus, the \(80\%\) confidence interval for the average net change in a student's GRE score after completing the test preparation course is \( (11.0, 18.4) \).