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Find the necessary confidence interval for the binomial proportion p. (Round your answers to three decimal...

Find the necessary confidence interval for the binomial proportion p. (Round your answers to three decimal places.)

A 90% confidence interval for p, based on a random sample of 985 trials of a binomial experiment which produced 592 successes.

Expert Solution

Solution :

Given that,

n = 985

x = 592

Point estimate = sample proportion = = x / n = 592/985=0.601

1 - = 1-0.601=0.399

At 90% confidence level

= 1 - 90%

= 1 - 0.90 =0.10

/2 = 0.05

Z/2 = Z0.05 = 1.645 ( Using z table )

Margin of error = E Z/2 * $\sqrt$ (( * (1 - )) / n)

= 1.645 * $\sqrt$ ((0.601*0.399) /985 )

E = 0.026

A 90% confidence interval p is ,

- E < p < + E

0.601-0.026 < p < 0.601+0.026

0.575< p < 0.627

(0.575 , 0.627)

orchestra answered 2 years ago

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Find the necessary confidence interval for the binomial proportion p. (Round your answers to three decimal...

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