Statistics for Business & Economics, Revised (MindTap Course List)
Statistics for Business & Economics, Revised (MindTap Course List)
12th Edition
ISBN: 9781285846323
Author: David R. Anderson, Dennis J. Sweeney, Thomas A. Williams, Jeffrey D. Camm, James J. Cochran
Publisher: South-Western College Pub
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Chapter 18, Problem 39SE

Due to a recent decline in the housing market, the national median sales price for single-family homes is $180,000 (The National Association of Realtors, January 2009). Assume that the following data were obtained from samples of recent sales of single-family homes in St. Louis and Denver.

Chapter 18, Problem 39SE, Due to a recent decline in the housing market, the national median sales price for single-family

  1. a. Is the median sales price in St. Louis significantly lower than the national median of $180,000? Use a statistical test with α = .05 to support your conclusion.
  2. b. Is the median sales price in Denver significantly higher than the national median of $180,000? Use a statistical test with α = .05 to support your conclusion.

a.

Expert Solution
Check Mark
To determine

Check whether the median sales price in St. Louis is significantly lower than the national median of $180,000 or not.

Answer to Problem 39SE

The median sale price for single-family homes in St. Louis is less than the national median price of $180,000.

Explanation of Solution

Calculation:

The given information is that the national median sales price for single family home is $180,000. The level of significance is 0.05.

The hypotheses are given below:

Null hypothesis:

H0:Median180,000.

That is, the median sales price in St. Louis is significantly greater than or equal to the national median of $180,000.

Alternative hypothesis:

Ha: Median <180,000.

That is, the median sales price in St. Louis is significantly lower than the national median of $180,000.

For a sign test, the mean μ=0.5n, standard deviation σ=0.25n and n=50

The mean is,

μ=0.5(50)=25

Thus, the mean is 25.

The standard deviation is,

σ=0.25(50)=12.5=3.5355

Thus, the standard deviation is 3.5355.

There are 18 plus signs in the lower tail.

The probability of 18 plus signs in the lower tail can be obtained by using the continuity correction factor and normal approximation. Hence, the p-value is obtained by using normal distribution with μ=25 and σ=3.5355

P(18 or fewer plus signs)=P(x18.5)=P(z18.5253.5355)=P(z1.84)

Procedure:

Step by step procedure to obtain the above probability using Table 1 of Appendix B is given below:

  • Locate the value –1.8 in the column, named z.
  • Move towards the right along the row of –1.8, till the column named 0.04 is reached.
  • The cell at the intersection of the row –1.8 and the column 0.04 gives the cumulative probability corresponding to the standard normal variable value –1.84.

Thus, P(z<1.84)=0.0329

Now,

P(18or fewer plus signs)=0.0329

Rejection rule:

If p-valueα, then reject the null hypothesis (Ha).

Conclusion:

Here the level of significance α=0.05.

Here, p-value(=0.0329)<α(=0.05).

That is, p-value is less than significance level.

Therefore, the null hypothesis is rejected.

Hence, it can be concluded that the median sale price for single-family homes in St. Louis is less than the national median price of $180,000.

b.

Expert Solution
Check Mark
To determine

Check whether the median sales price in Denver is significantly higher than the national median of $180,000 or not.

Answer to Problem 39SE

The median sale price for single-family homes in Denver is greater than the national median price of $180,000.

Explanation of Solution

Calculation:

The hypotheses are given below:

Null hypothesis:

H0:Median180,000.

That is, the median is less than or equal to 180,000.

Alternative hypothesis:

Ha: Median >180,000.

That is, median is greater than 180,000.

There are 13+27=40 observations in the data set.

For a sign test, the mean μ=0.5n, standard deviation σ=0.25n and n=40

The mean is,

μ=0.5(40)=20

Thus, the mean is 20.

The standard deviation is,

σ=0.25(40)=10=3.1623

Thus, the standard deviation is 3.1623.

There 27 plus signs in the upper tail.

The probability of 27 plus signs in the upper tail can be obtained by using the continuity correction factor and normal approximation. Hence, the p-value is obtained by using normal distribution with μ=20 and σ=3.1623.

P(27 or more plus signs)=P(x26.5)=P(z26.5203.1623)=P(z2.06)=1P(z<2.06)

Procedure:

Step by step procedure to obtain the above probability using Table 1 of Appendix B is given below:

  • Locate the value 2.0 in the column, named z.
  • Move towards the right along the row of 2.0, till the column named 0.06 is reached.
  • The cell at the intersection of the row 2.0 and the column 0.06 gives the cumulative probability corresponding to the standard normal variable value 2.06.

Thus, P(z<2.06)=0.9803

Therefore,

P(27 or more plus signs)=10.9803=0.0197

The upper-tail p-value is 0.0197.

Rejection rule:

If p-valueα, then reject the null hypothesis (Ha).

Conclusion:

Here the level of significance α=0.05.

Here, p-value(=0.0197)<α(=0.05).

That is, p-value is less than significance level.

Therefore, the null hypothesis is rejected.

Hence, it can be concluded that the median sale price for single-family homes in Denver is greater than the national median price of $180,000.

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Chapter 18 Solutions

Statistics for Business & Economics, Revised (MindTap Course List)

Ch. 18.1 - Competition in the personal computer market is...Ch. 18.2 - Two fuel additives are tested to determine their...Ch. 18.2 - A sample of 10 men was used in a study to test the...Ch. 18.2 - Percents of on-time arrivals for flights in the...Ch. 18.2 - A test was conducted for two overnight mail...Ch. 18.2 - The PGA Players Championship was held at the...Ch. 18.2 - The Scholastic Aptitude Test (SAT) consists of...Ch. 18.3 - Two fuel additives are being tested to determine...Ch. 18.3 - Samples of starting annual salaries for...Ch. 18.3 - The gap between the earnings of men and women with...Ch. 18.3 - Prob. 21ECh. 18.3 - Each year Bloomberg Businessweek publishes...Ch. 18.3 - Police records show the following numbers of daily...Ch. 18.3 - A certain brand of microwave oven was priced at 10...Ch. 18.3 - Prob. 25ECh. 18.4 - A sample of 15 consumers provided the following...Ch. 18.4 - Three admission test preparation programs are...Ch. 18.4 - Forty-minute workouts of one of the following...Ch. 18.4 - Cond Nast Traveler magazine conducts an annual...Ch. 18.4 - A large corporation sends many of its first-level...Ch. 18.4 - The better-selling candies are often high in...Ch. 18.5 - Consider the following set of rankings for a...Ch. 18.5 - Prob. 33ECh. 18.5 - Prob. 34ECh. 18.5 - A national study by Harris Interactive, Inc.,...Ch. 18.5 - Prob. 36ECh. 18.5 - A student organization surveyed both current...Ch. 18 - A survey asked the following question: Do you...Ch. 18 - Due to a recent decline in the housing market, the...Ch. 18 - Twelve homemakers were asked to estimate the...Ch. 18 - Prob. 41SECh. 18 - The following data are product weights for the...Ch. 18 - A client wants to determine whether there is a...Ch. 18 - Prob. 44SECh. 18 - Prob. 45SECh. 18 - Prob. 46SECh. 18 - Prob. 47SE
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