Answer:
The correct option is;
d. 24.2 to 25.6
Step-by-step explanation:
Here we have a sample with unknown population standard deviation, we therefore apply the student t distribution at 64 - 1 degrees of freedom
Therefore, we have
[tex]CI=\bar{x}\pm t\frac{s}{\sqrt{n}}[/tex]
Where:
[tex]\bar x[/tex] = Mean = 25
σ = Standard deviation = 2
n = Sample size = 64
t = T value at 98% = [tex]\pm 2.387[/tex]
Which gives
[tex]CI=25\pm t_{63}\frac{2}{\sqrt{64}}[/tex]
That is the value is from
24.40325 to 25.59675 which gives,by rounding to one decimal place, is
24.4 to 25.6.
