A study has been made to compare the nicotine contents of two brands of cigarett

Question

A study has been made to compare the nicotine contents of two brands of cigarettes. Ten cigarettes of Brand A had an average nicotine content of 4.2 milligrams with a standard deviation of 0.7 milligram. Eight cigarettes of Brand B had an average nicotine content of 3.1 milligrams with a standard deviation of 0.5 milligram. Assume that the two sets of data are independent random samples from normal populations with equal variances. Answer the following, and round off your answer to three decimal places. (a) Find a pooled estimate of the population standard deviation. (b) Construct a 95% confidence interval for the difference between the mean nicotine contents of the two brands of cigarettes.

Explanation / Answer

Formula:

(x1 bar – x2 bar) (-/+) E

E = tc *SE (x1-x2)

SE (x1-x2) = ((n1-1)*s1^2+(n2-1)*s2^2)/(n1+n2-2) * (1/n1+1/n2)

x1 bar = 4.2

x2 bar = 3.1

s1 = 0.7

s2 = 0.5

n1 = 10

n2 = 8

df = n1 + n2 – 2 = 10 + 8 – 2 = 16

level of significance is 5%

critical tc value is 2.120 from t table

SE = 0.2943

E = 2.120 * 0.2943 = 0.624

x1 bar – x2 bar = 4.2 – 3.1 = 1.1

(x1 bar – x2 bar) (-/+) E

0.476 and 1.724

Question a)

Answer: Pooled estimate of the standard deviation 0.294

Question b)

Answer: (0.476 and 1.724)

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