Answer:
n₁ > n₂ Sample size of the first sample is bigger
Step-by-step explanation:
CI = 95 % α = 5 % α = 0,05
We know the bell shape curve of the normal distribution is symmetrical with respect to the mean, therefore we only need to evaluate one tail of the samples
Then from z-table we find z(c) = 1,64
CI = ( μ₀ - z(c)*σ /√n < X < μ₀ + z(c)*σ /√n )
So we must compare the tails of the two CI
Let´s call n₁ and n₂ the samples size of two different samples
The CI of the samples begins at
sample 1 μ₀ - z(c)*σ /√n₁ and for sample 2 μ₀ - z(c)*σ /√n₂
that means 51,7 = μ₀ - z(c)*σ /√n₁ (1)
and 49,1 = μ₀ - z(c)*σ /√n₂ (2)
Where μ₀ ; z(c) = 1,64 ; σ are equal in both equations
Now by simple inspection, we note that the second term on the right side of the second equation should be bigger than the second term on the right side of the first equation
then
z(c)*σ /√n₂ > z(c)*σ /√n₁
Then n₂ need to be smaller than n₁
n₁ > n₂
