Elementary Statistics: Picturing the World (7th Edition)
Elementary Statistics: Picturing the World (7th Edition)
7th Edition
ISBN: 9780134683416
Author: Ron Larson, Betsy Farber
Publisher: PEARSON
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2-Proportion Test
In a 2-proportion test, two separate proportions are measured at the same time, and their similarity is evaluated. It is also known as a 2-proportion z-test, and a comparison of two different proportions is done in this method.
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Textbook Question
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Chapter 10, Problem 10.1.1RE

In Exercises 1−4. (a) identify the claim and state H0 and Ha, (b) find the critical value and identify the rejection region, (c) find the chi-square test statistic, (d) decide whether to reject or fail to reject the null hypothesis, and (e) interpret the decision in the context of the original claim.

1. A researcher claims that the distribution of the lengths of visits at physician offices is different from the distribution shown in the pie chart. You randomly select 400 people and ask them how long their office visits with a physician were. The table shows the results. At a = 0.01, test the researcher’s claim, (Adapted from Medscape)

Chapter 10, Problem 10.1.1RE, In Exercises 14. (a) identify the claim and state H0 and Ha, (b) find the critical value and

Survey results
Minutes Frequence, f
less than 9 20
10−12 80
13−16 113
17−20 91
21−24 40
25 or more 56

a.

Expert Solution
Check Mark
To determine

To identify: The claim.

To state: The hypothesis H0 and Ha .

Answer to Problem 10.1.1RE

The claim is that, the distribution of the lengths differs from the expected distribution.

The hypothesis H0 and Ha is,

H0: The distribution of the lengths of visits at physician offices is not differs from the expected distribution.

Ha: The distribution of the lengths differs from the expected distribution.

Explanation of Solution

Given info:

The data shows the results of the distribution of the lengths of the visits at physician offices.

Calculation:

Here, the distribution of the lengths differs from the expected distribution is tested. Hence, the claim is that the distribution of the lengths differs from the expected distribution.

The hypotheses are given below:

Null hypothesis:

H0: The distribution of the lengths of visits at physician offices is not differs from the expected distribution.

Alternative hypothesis:

Ha: The distribution of the lengths differs from the expected distribution.

b.

Expert Solution
Check Mark
To determine

To obtain: The critical value.

To identify: The rejection region.

Answer to Problem 10.1.1RE

The critical value is 15.086.

The rejection region is χ2>15.086 .

Explanation of Solution

Given info:

The level of significance is 0.01.

Calculation:

Critical value:

The critical value is calculated by using the (k1) degrees of freedom.

Substitute k as 6 in degrees of freedom.

61=5

From the Table 6-Chi-Square Distribution, the critical value for 5 degrees of freedom for α=0.01 level of significance is 15.086.

Rejection region:

The null hypothesis would be rejected if χ2>15.086 .

Thus, the rejection region is χ2>15.086 .

c.

Expert Solution
Check Mark
To determine

To obtain: The chi-square test statistic.

Answer to Problem 10.1.1RE

The chi-square test statistic is 18.770.

Explanation of Solution

Calculation:

Step by step procedure to obtain chi-square test statistic using the MINITAB software:

  • Choose Stat > Tables > Chi-Square Goodness-of-Fit Test (One Variable).
  • In Observed counts, enter the column of Frequency.
  • In Category names, enter the column of Minutes.
  • Under Test, select the column of Proportions in Proportions specified by historical counts.
  • Click OK.

Output using the MINITAB software is given below:

Elementary Statistics: Picturing the World (7th Edition), Chapter 10, Problem 10.1.1RE

Thus, the chi-square test statistic value is approximately 18.770.

d.

Expert Solution
Check Mark
To determine

To check: Whether the null hypothesis is rejected or fails to reject.

Answer to Problem 10.1.1RE

The null hypothesis is rejected.

Explanation of Solution

Conclusion:

From the result of (c), the test-statistic value is 18.770.

Here, the chi-square test statistic value is greater than the critical value.

That is, 18.770>15.086 .

Thus, it can be conclude that the null hypothesis is rejected.

e.

Expert Solution
Check Mark
To determine

To interpret: The decision in the context of the original claim.

Answer to Problem 10.1.1RE

The conclusion is that, there is evidence to support the claim that the distribution of the lengths differs from the expected distribution.

Explanation of Solution

Interpretation:

From the results of part (d), it can be conclude that there is evidence to support the claim that the distribution of the lengths differs from the expected distribution.

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Chapter 10 Solutions

Elementary Statistics: Picturing the World (7th Edition)

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