APPLIED STAT.IN BUS.+ECONOMICS
APPLIED STAT.IN BUS.+ECONOMICS
6th Edition
ISBN: 9781259957598
Author: DOANE
Publisher: RENT MCG
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Chapter 10, Problem 85CE

Male and female students in a finance class were asked how much their last tank of gas cost. Can you conclude that on average males spent more on gas than females? (a) State the hypotheses for this test. (b) Show the calculation of the test statistic, assuming unequal population variances. (c) State the decision rule, using α = .01 and the quick rule for degrees of freedom. (d) Draw the conclusion. (e) Is it reasonable to assume unequal variances? Explain.

Chapter 10, Problem 85CE, Male and female students in a finance class were asked how much their last tank of gas cost. Can you

a.

Expert Solution
Check Mark
To determine

State the hypotheses.

Explanation of Solution

The given information is that the summary statistic for male is x¯1=$43.20, s1=$8.30 and n1=13. The summary statistic for female is x¯2=$36.6, s2=$3.10 and n2=9.

Here, the direction of the test is right-tailed.

Assume μM is the average last tank cost spent by males and μF is the average last tank cost spent by females.

State the hypotheses:

Null hypothesis:

H0:μMμF0

That is, on average males did not spent more on gas than females.

Alternative hypothesis:

H1:μMμF>0

That is, on average males spent more on gas than female.

b.

Expert Solution
Check Mark
To determine

Find the test statistic, assuming unequal population variances.

Answer to Problem 85CE

The test statistic is 2.616.

Explanation of Solution

Calculation:

Test statistic:

tcalc=x¯1x¯2s12n1+s22n2=43.2036.60(8.30)213+(3.10)29=6.65.2992+1.0678=6.66.367=6.62.5233=2.616

Thus, the test statistic is 2.616.

c.

Expert Solution
Check Mark
To determine

State the decision rule and the quick rule for degrees of freedom.

Answer to Problem 85CE

The decision rule is “reject the null hypothesis, if tcalc>+2.896”.

The degrees of freedom is 8.

Explanation of Solution

Calculation:

By using the quick rule, the degrees of freedom is,

df=min(n11,n21)=min(131,91)=min(12,8)=8

Critical value:

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

  • Open an EXCEL file.
  • In cell A1, enter the formula “=T.INV(0.99, 8)”
  • Output using Excel software is given below:

APPLIED STAT.IN BUS.+ECONOMICS, Chapter 10, Problem 85CE , additional homework tip  1

From the output, the critical value is 2.896.

Decision rule:

If tcalc>+2.896, then reject the null hypothesis.

d.

Expert Solution
Check Mark
To determine

State the conclusion.

Answer to Problem 85CE

There is no evidence to infer that on average males spent more on gas than female.

Explanation of Solution

Here, the test statistic is less than the critical value.

That is, tcalc(=2.616)<+2.896.

Therefore, the null hypothesis is not rejected.

Thus, there is no evidence to infer that on average males spent more on gas than female.

e.

Expert Solution
Check Mark
To determine

Check whether it is reasonable to assume unequal variances.

Answer to Problem 85CE

Yes, it is reasonable to assume unequal variances.

Explanation of Solution

Calculation:

State the hypotheses:

Null hypothesis:

H0:σ12σ22=1

That is, the variances are equal.

Alternative hypothesis:

H1:σ12σ221

That is, the variances are not equal.

Degrees of freedom for numerator:

df1=n11=131=12

Degrees of freedom for denominator:

df2=n21=91=8

Lower critical value:

Software procedure:

Step-by-step software procedure to obtain lower critical value using EXCEL is as follows:

  • Open an EXCEL file.
  • In cell A1, enter the formula “=F.INV(0.005,12,8)”
  • Output using EXCEL is given below:

APPLIED STAT.IN BUS.+ECONOMICS, Chapter 10, Problem 85CE , additional homework tip  2

From the output, the critical value is FL=0.1871.

Upper critical value:

Software procedure:

Step-by-step software procedure to obtain upper critical value using EXCEL is as follows:

  • Open an EXCEL file.
  • In cell A1, enter the formula “=F.INV.RT(0.005,12,8)”
  • Output using EXCEL is given below:

APPLIED STAT.IN BUS.+ECONOMICS, Chapter 10, Problem 85CE , additional homework tip  3

From the output, the critical value is FR=7.015.

Decision rule:

  • If Fcalc<0.1871, then reject the null hypothesis
  • If Fcalc>7.015, then reject the null hypothesis.

Test statistic:

F=s12s22=(8.30)2(3.10)2=68.899.61=7.169

Thus, the test statistic is 7.169.

Conclusion:

Here, the test statistic is greater than the upper critical value.

That is, Fcalc(=7.169)>7.015.

Therefore, the null hypothesis is rejected.

Thus, there is evidence to infer that the variance has changed. That is, the population variances are unequal.

Hence, it is reasonable to assume unequal variances.

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Chapter 10 Solutions

APPLIED STAT.IN BUS.+ECONOMICS

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