Elementary Statistics: A Step By Step Approach
Elementary Statistics: A Step By Step Approach
10th Edition
ISBN: 9781259755330
Author: Allan G. Bluman
Publisher: McGraw-Hill Education
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Chapter 3, Problem 3.3.23RE

The number of police calls a small police department received each month is shown in the frequency distribution.

Class limits Frequency
39.9–42.8 2
42.9–45.8 2
45.9–48.8 5
48.9–51.8 5
51.9–54.8 12
54.9–57.8 3

a. Construct a percentile graph.

b. Find the values that correspond to the 35th, 65th, and 85th percentiles.

c. Find the percentile of values 44, 48, and 54.

a.

Expert Solution
Check Mark
To determine

To construct: A percentile graph for the given data.

Answer to Problem 3.3.23RE

Percentile graph is shown below.

Elementary Statistics: A Step By Step Approach, Chapter 3, Problem 3.3.23RE , additional homework tip  1

Explanation of Solution

Given info:

Class limit Frequency
39.9-42.8 2
42.8-45.8 2
45.9-48.8 5
48.9-51.8 5
51.9-54.8 12
54.9-57.8 3

Calculation:

Make a table for calculating percentile graph is shown below,

A

Class limit

B

Frequency

C

Cumulative frequency

D

Cumulative percent

       
       
       
       
       
       

Determine cumulative frequency and place in column C.

Determine the cumulative percentage and place in column D.

Cumulative%=cumulativefrequencyn×100%

Put 2 for cumulative frequency and 29 for n in the above formula to calculate the cumulative percentage for first class.

Cumulative%=229×100%=6.89%

Put 4 for cumulative frequency and 29 for n in the above formula to calculate the cumulative percentage for second class.

Cumulative%=429×100%=13.79%

Put 9 for cumulative frequency and 29 for n in the above formula to calculate the cumulative percentage for third class.

Cumulative%=929×100%=31.03%

Put 14 for cumulative frequency and 29 for n in the above formula to calculate the cumulative percentage for fourth class.

Cumulative%=1429×100%=73.68%

Put 26 for cumulative frequency and 29 for n in the above formula to calculate the cumulative percentage for fifth class.

Cumulative%=2629×100%=89.65%

Thus, the table for calculating percentile graph is,

A

Class limit

B

Frequency

C

Cumulative frequency

D

Cumulative percent

39.9-42.8 2 2 6.89
42.9-45.8 2 4 13.79
45.9-48.8 5 9 31.03
48.9-51.8 5 14 73.68
51.9-54.8 12 26 89.65
54.9-57.8 3 29 100

Graph the data using class boundaries for the x axis and the percentage for the y axis. Plot the cumulative percent and join the lines. Thus, the percentile graph is obtained as shown below.

Elementary Statistics: A Step By Step Approach, Chapter 3, Problem 3.3.23RE , additional homework tip  2

b.

Expert Solution
Check Mark
To determine

The values that correspond to the 35th, 65th and 85th percentiles.

Answer to Problem 3.3.23RE

The percentile values corresponding to 35th, 65th and 85th are 50, 53 and 55.

Explanation of Solution

Calculation:

Formula to calculate the percentile for the grouped data is given below,

Pm=l+hf(m.n100c)

Where,

  • l is the lower boundary of the class of the mth percentile.
  • h is the width of the class.
  • f is frequency of the class.
  • n is the total number of the frequencies.

Table for calculating percentile value,

A

Class limit

B

Frequency

C

Cumulative frequency

D

Cumulative percent

39.9-42.8 2 2 6.89
42.9-45.8 2 4 13.79
45.9-48.8 5 9 31.03
48.9-51.8 5 14 73.68
51.9-54.8 12 26 89.65
54.9-57.8 3 29 100

Locate the 35th percentiles by 35×29100=10.12 . So 35th percentiles lies in the interval 48.9 and 51.8.

Substitute 35 for m, 48.9 for l , 3 for h , 5 for f , 29 for n and 9 for c in the above formula,

P35=48.9+35(35×291009)=48.9+35(10.129)=48.9+0.672=49.57

Thus, the 35th percentile of the data is approximately 50.

Locate the 65th percentiles by 65×29100=18.85 . So 65th percentiles lies in the interval 51.9 and 54.8.

Substitute 65 for m, 51.9 for l , 3 for h , 12 for f , 29 for n and 14 for c in the above formula,

P65=51.9+312(65×2910014)=51.9+312(18.8514)=51.9+1.21=53.11

Thus, the 65th percentile of the data is approximately 53.

Locate the 85th percentiles by 85×29100=24.65 . So 85th percentiles lies in the interval 51.9 and 54.8.

Substitute 85 for m, 51.9 for l , 3 for h , 12 for f , 29 for n and 14 for c in the above formula,

P85=51.9+312(85×2910014)=51.9+312(24.6514)=51.9+2.66=54.56

Thus, the 85th percentile of the data is approximately 55.

c.

Expert Solution
Check Mark
To determine

The percentile rank of values 44, 48 and 54.

Answer to Problem 3.3.23RE

The percentile rank for values 44, 48 and 54 are 9th, 26th and 77th respectively.

Explanation of Solution

Calculation:

Formula to calculate the percentile rank for the grouped data is given below,

Pm=l+hf(m.n100c)

Where,

  • l is the lower boundary of the class of the mth percentile.
  • h is the width of the class.
  • f is frequency of the class.
  • n is the total number of the frequencies.
  • c is the cumulative frequency of the class immediate preceding to the class.

Value 44 lies in the interval 42.9-45.8.

Substitute 44 for Pm , 42.9 for l , 3 for h , 2 for f , 29 for n and 2 for c in the above formula,

44=42.9+32(m×291002)=42.9+1.5(0.29m2)=42.9+0.44m3=39.9+0.44m

Simplify the equation,

0.44m=4439.9m=4.10.44=9.31=9

Thus, the percentile rank of the value 44 is 9th percentile.

The value 48 lies in the interval 48.9-51.8.

Substitute 48 for Pm , 48.9 for l , 3 for h , 5 for f , 29 for n and 9 for c in the above formula,

48=48.9+35(m×291009)=48.9+0.6(0.29m9)=48.9+0.174m5.4=43.5+0.174m

Simplify the equation,

0.174m=4843.5m=4.50.174=25.86=26

Thus, the percentile rank of the value 48 is 26th percentile.

The value 54 lies in the interval 51.9-54.8.

Substitute 54 for Pm 51.9 for l , 3 for h , 12 for f , 29 for n and 14 for c in the above formula,

54=51.9+312(m×2910014)=51.9+312(0.29m14)=51.9+0.0725m3.5=48.4+0.0725m

Simplify the equation,

0.0725m=5448.4m=5.60.0725=77.2477

Thus, the percentile rank of the value 54 is 77th percentile.

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Chapter 3 Solutions

Elementary Statistics: A Step By Step Approach

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