Loose Leaf for Statistical Techniques in Business and Economics
Loose Leaf for Statistical Techniques in Business and Economics
17th Edition
ISBN: 9781260152647
Author: Douglas A. Lind
Publisher: McGraw-Hill Education
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Chapter 3, Problem 84CE

a.

To determine

Find the mean cost.

a.

Expert Solution
Check Mark

Answer to Problem 84CE

The mean cost is $141.20.

Explanation of Solution

Calculation:

Arithmetic mean of grouped data:

The mean of the data that is given in frequency distribution (grouped data) is calculated as,

x¯=fMn

In the formula, x¯ denotes the sample mean, M denotes the midpoint for each class, f denotes the frequency for each class, n denotes the total frequency.

Midpoint:

The midpoint is the average of the lower class limits of two consecutive classes. The formula is,

Midpoint=Lowerlimitofclass+Lowerlimitofconsecutiveclass2

The frequency distribution table for mean is,

Electricity Cost

Frequency

f

MfM
$80 up to $100390270
100 up to 1208110880
120 up to 140121301,560
140 up to 160161502,400
160 up to 18071701,190
180 up to 2004190760
n=50fM=7,060

Substitute n=50 and fM=7,060 in arithmetic mean formula.

x¯=7,06050=141.20

Hence, the mean cost is $141.20.

b.

To determine

Find the standard deviation.

b.

Expert Solution
Check Mark

Answer to Problem 84CE

The standard deviation is $26.24.

Explanation of Solution

Calculation:

Standard deviation of grouped data:

The standard deviation of the data that is given in frequency distribution (grouped data) is calculated as,

s=f(Mx¯)2n1

In the formula, s denotes the sample standard deviation, x¯ denotes the sample mean of grouped data, M denotes the midpoint for each class, f denotes the frequency for each class, n denotes the total frequency.

From part (a) the value of mean is 141.20. The frequency distribution table for standard deviation is,

Electricity Cost

Frequency

f

M(Mx¯)(Mx¯)2f(Mx¯)2
$80 up to $100390–51.22,621.447,864.32
100 up to 1208110–31.2973.447,787.52
120 up to 14012130–11.2125.441,505.28
140 up to 160161508.877.441,239.04
160 up to 180717028.8829.445,806.08
180 up to 200419048.82,381.449,525.76
n=50f(Mx¯)2=33,728

Substitute n=50 and f(Mx¯)2=33,728, in standard deviation formula.

s=33,728501=33,72849=688.3265=26.24

Hence, the standard deviation is $26.24.

c.

To determine

Find the limits to estimate the proportion of costs within two standard deviations of the mean.

c.

Expert Solution
Check Mark

Answer to Problem 84CE

The limits to estimate the proportion of costs within two standard deviations of the mean are $88.72 and $193.68.

Explanation of Solution

Calculation:

Empirical Rule:

Let x¯ be the mean and s is the standard deviation of the symmetrical, bell-shaped distribution then,

  • About 68% of the observations lie within plus and minus one standard deviation of the mean. That is, x¯±1s.
  • About 95% of the observations lie within plus and minus two standard deviation of the mean. That is, x¯±2s.
  • About 99.7% of the observations lie within plus and minus three standard deviation of the mean. That is, x¯±3s.

The values are,

x¯2s=141.202(26.24)=141.2052.48=88.72

x¯+2s=141.20+2(26.24)=141.20+52.48=193.68

Hence, the limits to estimate the proportion of costs within two standard deviations of the mean are $88.72 and $193.68.

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Chapter 3 Solutions

Loose Leaf for Statistical Techniques in Business and Economics

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