It is believed that 28% of U.S. homes have a direct satellite television receiver. How large a sample is necessary to estimate the true population of homes that have a direct satellite television receiver with 90% confidence and within 2 percentage points?

Answer:
Given:

The Population Proportion $(p) = 0.28$
The Margin Of Error $(E) = 0.02$
The Confidence Interval Level $= 90 %$

Solution:
The Significance Level $(α) :$
$α = 1 - 0.90$
$= 0.10$

The Critical Value $(z_{c}) :$
$z_{c} = z_{α / 2}$
$= z_{0.10 / 2}$
$= 1.645$

→ Here we use a margin of error formula to find out the sample size

$E = z_{c} \times \sqrt{\frac{p \times (1 - p)}{n}}$

$0.02 = 1.645 \times \sqrt{\frac{0.28 \times (1 - 0.28)}{n}}$

$n = 1355.56$

$n \approx 1356$

Final Answer:
The sample size $(n) = 1356$

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