How many women must be randomly selected to estimate the mean weight of women in one age group. we want 90% confidence that the sample mean is within 2.7 lb of the population mean, and the population standard deviation is known to be 22 lb?

Question

Mathematics

Kelly Gilmore

18 October, 12:25

How many women must be randomly selected to estimate the mean weight of women in one age group. we want 90% confidence that the sample mean is within 2.7 lb of the population mean, and the population standard deviation is known to be 22 lb?

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Nola Craig · Answer 1

That is a very good question ...

Look Grank

you know that:

confidence interval = mean + or - Margin of Error

and

Margin of Error = (z) * (standard deviation) / (sqrt of n)

where n is the number of sample records

So we need to calculate z-value firstly

It says: " we want 90% confidence"

So that:

confidence90% corresponds to z-value of 1.645

Plug that into our formula of Margin of Error:

Margin of Error = (1.645) * (22) / (sqrt of n)

"The sample mean is within 2.7 lb of the population mean" means that Margin of Error is 2.7

Margin of Error:

2.7 = (1.645) * (22) / (sqrt of n)

Now solve for n:

n=179.66~180

SO that 180 women must be randomly selected to estimate the mean weight of women in one age group.