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A random sample of 64 sat scores of students applying for merit scholarships showed an average of 1400 with a standard deviation of 240. determine the "t" value for a 95% confidence interval for the mean
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A random sample of 64 sat scores of students applying for merit scholarships showed an average of 1400 with a standard deviation of 240. determine the "t" value for a 95% confidence interval for the mean sat score. round your answer to three decimal places.

User Klara
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2 Answers

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95% confidence interval is ( 1340.06 , 1459.94)
( solution is attached )
A random sample of 64 sat scores of students applying for merit scholarships showed-example-1
User Earo Wang
by
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2 votes
To find t-critical value,
with n = 64 and a 95% confidence interval t-value is 1.998
Sample mean = 1400
Standard deviation = 240
Standard error of mean = s/√n
Standard error of mean = 240/√64
SE = 240/8
Standard error of the mean = 30
Confidence interval 1400-30(1.998) and 1400 + 30(1.998)
95% confidence interval (1340.06, 1459.94)

User Dub Stylee
by
5.9k points
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