Answer:
The minimum sample size 'n' = 862.538
Step-by-step explanation:
Step(i):-
Given the percentage of students favoring a four-day school week during May and June of every school year is approximately 85%
Given the Proportion of students favoring a four-day school week during May and June of every school year
p = 85% = 0.85
q = 1-p = 1-0.85 = 0.15
Given Margin of error = 2 % or 0.02
Level of significance = 0.90 or 0.10
The critical value Z₀.₁₀ = 1.645
Step(ii):-
The Margin of error is determined by
[tex]M.E = Z_{0.10} \sqrt{\frac{p(1-p)}{n} }[/tex]
[tex]0.02=1.645 X \sqrt{\frac{0.85(0.15)}{n} }[/tex]
Cross Multiplication, we get
[tex]\sqrt{n} =1.645 X {\frac{\sqrt{0.125} )}{0.02} }[/tex]
√n = 29.369
squaring on both sides, we get
n = 862.538
Final answer:-
Sample size 'n' = 862.538
