the sample of selected men have the average weight of 180 lb with the standard deviation of 30 lb. For a 0.95 degree of confidence find confidence interval for the mean of the whole population, assuming the normal weight distribution and the following conditions: 40 men selected

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11 years ago

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95% = mean ± 1.96 SEm

SEm = SD/√n

answered by PsyDAG

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the sample of selected men have the average weight of 180 lb with the standard deviation of 30 lb. For a 0.95 degree of confidence find confidence interval for the mean of the whole population, assuming the normal weight distribution and the following conditions: 40 men selected

1 answer

95% = mean ± 1.96 SEm

SEm = SD/√n

PsyDAG · Answer

95% = mean ± 1.96 SEm SEm = SD/√n