Bluman, Elementary Statistics: A Step By Step Approach, © 2015, 9e, Student Edition (reinforced Binding) (a/p Statistics)
Bluman, Elementary Statistics: A Step By Step Approach, © 2015, 9e, Student Edition (reinforced Binding) (a/p Statistics)
9th Edition
ISBN: 9780021418251
Author: Allan G. Bluman
Publisher: MCGRAW-HILL HIGHER EDUCATION
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Textbook Question
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Chapter 3.3, Problem 20E

Airplane Speeds The airborne speeds in miles per hour of 21 planes are shown. Find the approximate values that correspond to the given percentiles by constructing a percentile graph.

Class Frequency

366–386

387–407

408–428

429–449

450–470

471–491

492–512

513–533

4

2

3

2

1

2

3

4

21

Source: The World Almanac and Book of Facts.

a. 9th

b. 20th

c. 45th

d. 60th

e. 75th

Using the same data, find the approximate percentile ranks of the following speeds in miles per hour (mph).

f. 380 mph

g. 425 mph

h. 455 mph

i. 505 mph

j. 525 mph

a.

Expert Solution
Check Mark
To determine

The 9th percentile of the given data.

Answer to Problem 20E

The 9th percentile of the given data is 376.

Explanation of Solution

Given info:

The class and frequency is shown below.

ClassFrequency
366-3864
387-4072
408-4283
429-4492
450-4701
471-4912
492-5123
513-5334
Total21

Calculation:

Make a table as shown, and find the cumulative frequency of each class.

A

Class

B

Frequency (f)

C

Cumulative frequency (cf)

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
Total513

Locate the 9th percentile by 9×21100=1.89 observation. So the 9th percentiles group is 366386 containing the 1.89th observation.

Formula to calculate value corresponding percentiles is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 366 for l, 20 for h, 4 for f, 9 for p, 21 for n, and 0 for c.

P9=366+204(9×211000)=366+204(1.890)=366+5(1.89)=366+9.45

Simplify the equation.

P9=366+9.45=375.45376

Therefore, the 9th percentile of the data is 376.

b.

Expert Solution
Check Mark
To determine

The 20th percentile of the given data.

Answer to Problem 20E

The 20th percentile of the given data is 389.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

Locate the 20th percentile by 20×21100=4.2 observation. So, the 20th percentiles group is 387407 containing the 4.2th observation.

Formula to calculate value corresponding percentiles is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 387 for l, 20 for h, 2 for f , 20 for p, 21 for n, and 4 for c,

P20=387+202(20×211004)=387+202(4.24)=387+10(0.2)=387+2=389

Therefore, the 20th percentile of the data is 389.

c.

Expert Solution
Check Mark
To determine

The 45th percentile of the given data.

Answer to Problem 20E

The 45th percentile of the given data is 434.

Explanation of Solution

Locate the 45th percentile by 45×21100=9.45 observation. So, the 45th percentile group is 429449 containing the 9.45 observation.

Formula to calculate value corresponding percentile is, P=l+hf(p×n100c)

Substitute 429 for l, 20 for h, 2 for f, 45 for p, 21 for n, and 9 for c.

P45=429+202(45×211009)=429+202(9.459)=429+10(0.45)=429+4.5

Simplify the equation,

Bluman, Elementary Statistics: A Step By Step Approach, © 2015, 9e, Student Edition (reinforced Binding) (a/p Statistics), Chapter 3.3, Problem 20E , additional homework tip  1P45=429+4.5=433.5434

Therefore, the 45th percentile of the data is 434.

d.

Expert Solution
Check Mark
To determine

The 60th percentile of the given data.

Answer to Problem 20E

The 60th percentile of the given data is 477.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

Locate the 60th percentile by 60×21100=12.6 observation. So, the 60th percentiles group is 471491 containing the 12.6 observation.

Formula to calculate value corresponding percentiles is, P=l+hf(p×n100c)

Substitute 471 for l, 20 for h, 2 for f, 60 for p, 21 for n, and 12 for c.

P60=471+202(60×2110012)=471+202(12.612)=471+10(0.6)=471+6

Simplify the equation.

P60=471+6=477

Therefore, the 60th percentile of the data is 477.

e.

Expert Solution
Check Mark
To determine

The 75th percentile of the given data.

Answer to Problem 20E

The 75th percentile of the given data is 504.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

Locate the 75th percentile by 75×21100=15.75 observation. So the 75th percentiles group is 492512 containing the 15.75th observation.

Formula to calculate value corresponding percentiles is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 492 for l, 20 for h, 3 for f, 75 for p, 21 for n, and 14 for c.

P75=492+203(75×2110014)=492+203(15.7514)=492+6.67×(1.75)=492+11.67

Simplify the equation.

Bluman, Elementary Statistics: A Step By Step Approach, © 2015, 9e, Student Edition (reinforced Binding) (a/p Statistics), Chapter 3.3, Problem 20E , additional homework tip  2P75=492+11.67=503.67504

Therefore, the 75th percentile of the data is 504.

f.

Expert Solution
Check Mark
To determine

The percentile rank corresponding to value 380 mph.

Answer to Problem 20E

The 14th percentile rank corresponding to the value is 380 mph.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

The speed 380 mph lies in the interval 366-386.

Formula to calculate value corresponding percentiles,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles rank.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 366 for l, 20 for h, 4 for f, 380 for P, 21 for n, and 0 for c.

380=366+204(p×211000)=366+204(0.21p0)=366+5(0.21p0)=366+1.05p0

Simplify the equation,

1.05p=380366p=141.0513.3414(roundingup)

Therefore, the percentile rank for the speed 380 mph is 14th percentile.

g.

Expert Solution
Check Mark
To determine

The percentile rank corresponding to value 425 mph.

Answer to Problem 20E

41th percentile rank corresponding to the value 425 mph.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

The speed 425 mph lies in the interval 408-428.

Formula to calculate value corresponding percentile is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles rank.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 408 for l, 20 for h, 3 for f, 425 for P, 21 for n, and 6 for c.

425=408+203(p×211006)=408+203(0.21p6)=408+6.67×(0.21p6)=408+1.4p40.02

Simplify the equation.

1.4p=425408+40.2p=57.21.440.8541(roundingup)

Therefore, the percentile rank for the speed 425mph is 41th percentile.

h.

Expert Solution
Check Mark
To determine

The percentile rank corresponding to value 455.

Answer to Problem 20E

54th percentile rank corresponding to the value 455.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

The speed 455 mph lies in the interval 450-470.

Formula to calculate value corresponding percentile is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles rank.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 450 for l, 20 for h, 1 for f, 455 for P, 21 for n, and 11 for c.

455=450+201(p×2110011)=450+201(0.21p11)=450+20×(0.21p11)=450+4.2p220

Simplify the equation,

4.2p=455450+220p=2254.253.5754(roundingup)

Therefore, the percentile rank for the speed 455 mph is 54th percentile.

i.

Expert Solution
Check Mark
To determine

The percentile rank corresponding to value 505.

Answer to Problem 20E

The percentile rank corresponding to value 505 is 76th percentile.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

The speed 505mph lies in the interval 492-512.

Formula to calculate value corresponding percentile is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles rank.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 492 for l, 20 for h, 3 for f, 505 for P, 21 for n, and 14 for c.

505=492+203(p×2110014)=492+203(0.21p14)=492+6.67×(0.21p14)=492+1.4p93.38

Simplify the equation,

1.4p=505492+93.38p=106.381.475.9876(roundingup)

Therefore, the percentile rank for the speed 505 mph is 76th percentiles.

j.

Expert Solution
Check Mark
To determine

The percentile rank corresponding to value 525.

Answer to Problem 20E

The percentile rank for the speed 525 mph is 93th percentile.

Explanation of Solution

Calculation:

Determine the cumulative frequency of given data and write in column C.

A

Class

B

Frequency (f)

C

Cumulative Frequency (cf)

366-38644
387-40726
408-42839
429-449211
450-470112
471-491214
492-512317
513-533421
21

The speed 525 mph lies in the interval 513-533.

Formula to calculate value corresponding percentiles is,

P=l+hf(p×n100c)

Where,

  • l is lower limits of the class.
  • h is the width of class.
  • f is frequency of the class.
  • p is percentiles rank.
  • n is the total number.
  • c is preceding cumulative frequency.

Substitute 513 for l, 20 for h, 4 for f, 525 for P, 21 for n, and 17 for c.

525=513+204(p×2110017)=513+204(0.21p17)=513+5(0.21p17)=513+1.05p85

Simplify the equation,

1.05p=525513+85p=971.0592.3893(roundingup)

Therefore, the percentile rank for the speed 525 mph is 93th percentile.

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Chapter 3 Solutions

Bluman, Elementary Statistics: A Step By Step Approach, © 2015, 9e, Student Edition (reinforced Binding) (a/p Statistics)

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