Answer:
a)
you are unwilling to predict the proportion value at your school = 0.90
b)
The large sample size 'n' = 864
Step-by-step explanation:
Given estimated proportion 'p' = 10% = 0.10
Given Margin of error M.E = 0.02
Level of significance α = 0.05
a)
you are unwilling to predict the proportion value at your school
q = 1- p = 1- 0.10 =0.90
b)
The Margin of error is determined by
[tex]M.E = \frac{Z_{\frac{\alpha }{2} } \sqrt{p(1-p)} }{\sqrt{n} }[/tex]
[tex]0.02 = \frac{1.96 X \sqrt{0.10 (0.90)} }{\sqrt{n} }[/tex]
Cross multiplication , we get
[tex]\sqrt{n} = \frac{1.96 X \sqrt{0.10 (0.90)} }{0.02 }[/tex]
√n = 29.4
Squaring on both sides , we get
n = 864.36
Conclusion:-
The large sample size 'n' = 864
