STATISTICAL TECHNIQUES-ACCESS ONLY
STATISTICAL TECHNIQUES-ACCESS ONLY
16th Edition
ISBN: 9780077639648
Author: Lind
Publisher: MCG
bartleby

Concept explainers

bartleby

Videos

Textbook Question
Book Icon
Chapter 19, Problem 32CE

Christina Sanders is a member of the women’s basketball team at Windy City College. Last season, she made 55% of her free throw attempts. In an effort to improve this statistic, she attended a summer camp devoted to shooting techniques. The next 20 days she shot 100 free throws each day. She carefully recorded the number of free throws that she made each day. The results are reported below.

Chapter 19, Problem 32CE, Christina Sanders is a member of the womens basketball team at Windy City College. Last season, she

To interpret, the first day she made 55 out of 100, or 55%. The second day she made 61 shots, the third day, 52 shots, the tenth day 58, the eleventh day 57 shots. The last day she made 67 out of 100, or 67%.

  1. a. Develop a control chart for the proportion of shots made. Over the 20 days of practice, what percent of attempts did she make? What are the upper and lower control limits for the proportion of shots made?
  2. b. Is there any trend in her proportion made? Does she seem to be improving, staying the same, or getting worse?
  3. c. Find the percent of attempts made for the last 5 days of practice. Use the hypothesis testing procedure, formula (15-1), to determine if there is an improvement from 55%.

a.

Expert Solution
Check Mark
To determine

Create a control chart for the proportion of shots made.

Find the overall percentage of shots made in the 20 days of practice.

Find the upper and lower control limits of the proportion of shots made.

Answer to Problem 32CE

The control chart for the proportion of shots made is as follows:

STATISTICAL TECHNIQUES-ACCESS ONLY, Chapter 19, Problem 32CE

The overall percentage of shots made in the 20 days of practice is 61.85%.

The upper control limit of the proportion of shots made is 0.7642.

The lower control limit of the proportion of shots made is 0.4728.

Explanation of Solution

Calculation:

Denote Y as the random variable representing the number of shots made on a certain practice day, out of the 100 free throws. Thus, for each day, the number of subgroups for the construction of the control chart is 100.

Step-by-step procedure to construct the control chart for the proportion using MINITAB software is as follows:

  • Choose Stat > Control Charts > Attributes Charts > P.
  • In Variables, enter columns Y.
  • In Subgroup size, enter 100.
  • Clock OK.

The control chart for the proportion of shots made is obtained using MINITAB software.

In the obtained control chart, the central line represents the overall proportion of shots made in the 20 days of practice, which is, 0.6185.

Thus, the overall percentage of shots made in the 20 days of practice is 61.85% (=100×0.6185).

The quantities UCL and LCL in the control chart represent the upper and lower control limits of the proportions.

Thus, the upper control limit of the proportion of shots made is 0.7642; the lower control limit of the proportion of shots made is 0.4728.

b.

Expert Solution
Check Mark
To determine

Describe the trend in the proportion of shots made, and note whether the player is showing any improvement in her shots, staying the same, or worsening over the practice period.

Answer to Problem 32CE

The player appears to be showing improvement in her shots over the practice period.

Explanation of Solution

A careful observation of the control chart for the proportion of shots made reveals that for the first 11 days, the proportions fluctuate over a wide range of values, sometimes being higher than the overall proportion of 0.6185, and sometimes lower than 0.6185. However, starting from the 12th day and till the 20th day, the proportion never falls below the central line of 0.6185, even though there are some fluctuations.

Thus, the player appears to be showing improvement in her shots over the practice period.

c.

Expert Solution
Check Mark
To determine

Calculate the percent of attempts made in the last 5 days of practice.

Perform a hypothesis test to decide whether there is an improvement from 55%.

Answer to Problem 32CE

The percent of attempts made in the last 5 days of practice is 65.4%.

There is a significant improvement in the shots made by the player from 55%.

Explanation of Solution

Denote π as the true proportion of shots made in the last 5 days of practice. The null and alternate hypotheses for testing whether there is an improvement from 55% in the last 5 days of practice are given below:

Null hypothesis:

H0:π0.55, that is, there is no improvement from 55% in the last 5 days of practice.

Alternate hypothesis:

H1:π>0.55, that is, there is an improvement from 55% in the last 5 days of practice.

This is a right-tailed test, due to the greater than-type alternate hypothesis.

The z-test for a single proportion is to be performed in this case. Assume that the level of significance is 0.05. The critical value is such that, P(Zz)=0.05. Consider the following calculation:

P(Zz)=0.05P(Z<z)=1P(Zz)=10.05=0.95.P(<Z<0)+P(0Z<z)=0.95P(0Z<z)=0.950.5 [P(<Z<0)=0.5]=0.45.

Use Table B.3: Areas under the Normal Curve to obtain the value of z, such that P(0Z<z)=0.45, as follows:

  • Locate the value 0.4500 from the body of the table. The exact value 0.4500 is not present in the table. Hence, locate the nearest values to it, as 0.4495 and 0.4505.
  • Identify the value of z corresponding to both 0.4495 and 0.4505 as 1.6.
  • Identify the column 0.04 for 0.4495, and the column 0.05 for 0.4505, to represent the second decimal place.
  • The z-values 1.64 and 1.65 are the nearest possible values, such that, P(0Z<1.64)=0.4495 and P(0Z<1.65)=0.4505.

Since the required probability is, 0.45=0.4495+0.45052, it can be said that P(0Z<1.645)=0.45 so that 1.645=1.64+1.652.

Decision rule:

Reject H0 if z1.645. Otherwise, fail to reject H0.

The total number of free throws attempted in the last 5 days of practice is 500(=5×100).

The number of shots made in the last 5 days of practice is 327(=65+63+68+64+67).

Thus, the proportion of shots made in the last 5 days of practice is calculated below:

p=327500=0.654.

Using the formula (15- 1), the test statistic can be calculated as follows:

z=pππ(1π)n=0.6540.550.55(10.55)500=0.1040.24755004.674.

Conclusion:

The calculated z-value is greater than the critical value.

In other words, z(=4.674)>1.645.

Thus, according to the decision rule, reject H0.

Hence, it can be concluded that there is a significant improvement in the shots made by the player from 55%.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
6. Show that 1{AU B} = max{1{A}, I{B}} = I{A} + I{B} - I{A} I{B}; I{AB} = min{I{A}, I{B}} = I{A} I{B}; I{A A B} = I{A} + I{B}-21{A} I {B} = (I{A} - I{B})².
Theorem 3.5 Suppose that P and Q are probability measures defined on the same probability space (2, F), and that F is generated by a л-system A. If P(A) = Q(A) for all A = A, then P = Q, i.e., P(A) = Q(A) for all A = F.
6. Show that, for any random variable, X, and a > 0, Lo P(x -00 P(x < x

Chapter 19 Solutions

STATISTICAL TECHNIQUES-ACCESS ONLY

Ch. 19 - Auto-Lite Company manufactures car batteries. At...Ch. 19 - Below is a p-chart for a manufacturing process. a....Ch. 19 - Inter-State Moving and Storage Company is setting...Ch. 19 - A bicycle manufacturer randomly selects 10 frames...Ch. 19 - During the process of producing toilet paper,...Ch. 19 - Sams Supermarkets monitors the checkout scanners...Ch. 19 - Dave Christi runs a car wash chain with outlets...Ch. 19 - Compute the probability of accepting a lot of DVDs...Ch. 19 - Determine the probability of accepting lots that...Ch. 19 - Determine the probability of accepting lots that...Ch. 19 - Warren Electric manufactures fuses for many...Ch. 19 - Grills Video Products purchases LCDs from Mira...Ch. 19 - The production supervisor at Westburg Electric...Ch. 19 - The manufacturer of running shoes conducted a...Ch. 19 - At Rumseys Old Fashion Roast Beef, cola drinks are...Ch. 19 - A new machine has just been installed to produce...Ch. 19 - Long Last Tire Company, as part of its inspection...Ch. 19 - Charter National Bank has a staff of loan officers...Ch. 19 - The producer of a candy bar, called the “King...Ch. 19 - Early Morning Delivery Service guarantees delivery...Ch. 19 - An automatic machine produces 5.0-millimeter bolts...Ch. 19 - Steele Breakfast Foods Inc. produces a popular...Ch. 19 - An investor believes there is a 5050 chance that a...Ch. 19 - Lahey Motors specializes in selling cars to buyers...Ch. 19 - A process engineer is considering two sampling...Ch. 19 - Christina Sanders is a member of the womens...Ch. 19 - Erics Cookie House sells chocolate chip cookies in...Ch. 19 - The numbers of near misses recorded for the last...Ch. 19 - Prob. 35CECh. 19 - Swiss Watches, Ltd. purchases watch stems for...Ch. 19 - Automatic Screen Door Manufacturing Company...Ch. 19 - Prob. 38CE
Knowledge Booster
Background pattern image
Statistics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, statistics and related others by exploring similar questions and additional content below.
Recommended textbooks for you
Text book image
Holt Mcdougal Larson Pre-algebra: Student Edition...
Algebra
ISBN:9780547587776
Author:HOLT MCDOUGAL
Publisher:HOLT MCDOUGAL
Text book image
Glencoe Algebra 1, Student Edition, 9780079039897...
Algebra
ISBN:9780079039897
Author:Carter
Publisher:McGraw Hill
Text book image
Big Ideas Math A Bridge To Success Algebra 1: Stu...
Algebra
ISBN:9781680331141
Author:HOUGHTON MIFFLIN HARCOURT
Publisher:Houghton Mifflin Harcourt
Text book image
College Algebra
Algebra
ISBN:9781938168383
Author:Jay Abramson
Publisher:OpenStax
Text book image
PREALGEBRA
Algebra
ISBN:9781938168994
Author:OpenStax
Publisher:OpenStax
Sampling Methods and Bias with Surveys: Crash Course Statistics #10; Author: CrashCourse;https://www.youtube.com/watch?v=Rf-fIpB4D50;License: Standard YouTube License, CC-BY
Statistics: Sampling Methods; Author: Mathispower4u;https://www.youtube.com/watch?v=s6ApdTvgvOs;License: Standard YouTube License, CC-BY