Answer:
option (b) 0.0228
Step-by-step explanation:
Data provided in the question:
Sample size, n = 100
Sample mean, μ = $20
Standard deviation, s = $5
Confidence interval = between $19 and $21
Now,
Confidence interval = μ ± [tex]z\frac{s}{\sqrt n}[/tex]
thus,
Upper limit of the Confidence interval = μ + [tex]z\frac{s}{\sqrt n}[/tex]
or
$21 = $20 + [tex]z\frac{5}{\sqrt{100}}[/tex]
or
z = 2
Now,
P(z = 2) = 0.02275 [From standard z vs p value table]
or
P(z = 2) ≈ 0.0228
Hence,
the correct answer is option (b) 0.0228
