Loose Leaf for Statistical Techniques in Business and Economics (Mcgraw-hill/Irwin Series in Operations and Decision Sciences)
Loose Leaf for Statistical Techniques in Business and Economics (Mcgraw-hill/Irwin Series in Operations and Decision Sciences)
16th Edition
ISBN: 9780077639709
Author: Douglas A. Lind, William G Marchal, Samuel A. Wathen
Publisher: McGraw-Hill Education
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Chapter 6, Problem 8E

FILE The Downtown Parking Authority of Tampa, Florida, reported the following information for a sample of 250 customers on the number of hours cars are parked and the amount they are charged.

Chapter 6, Problem 8E, FILE The Downtown Parking Authority of Tampa, Florida, reported the following information for a

  1. a. Convert the information on the number of hours parked to a probability distribution. Is this a discrete or a continuous probability distribution?
  2. b. Find the mean and the standard deviation of the number of hours parked. How would you answer the question: How long is a typical customer parked?
  3. c. Find the mean and the standard deviation of the amount charged.

a.

Expert Solution
Check Mark
To determine

Convert the number of hours parked to a probability distribution.

Identify whether this is a discrete or continuous probability distribution.

Answer to Problem 8E

The probability distribution of number of hours parked is as follows:

Number of hoursProbability
10.08
20.152
30.212
40.18
50.16
60.052
70.02
80.144

This is a discrete random variable.

Explanation of Solution

Probability distribution:

The possible outcomes of an experiment and the probability associated with each of its outcome is called probability distribution.

The probability distribution of the number of hours parked is calculated as follows.

Number of hoursFrequencyAmount chargedProbability
120320250=0.08
238638250=0.152
353953250=0.212
4451245250=0.18
5401440250=0.16
6131613250=0.052
75185250=0.02
8362036250=0.144
Total2501

Here, the random variable is the number of hours parked, which takes only a certain number of separated values. Hence, it is a discrete random variable.

b.

Expert Solution
Check Mark
To determine

Find the mean and standard deviation of the number of hours parked.

Explain the duration of a typical customer parked.

Answer to Problem 8E

The mean of the number of hours parked is 4.144.

The standard deviation of the number of hours parked is 2.0908.

A typical customer parked for 4.144 hours.

Explanation of Solution

The mean number of hours parked is calculated as follows:

μ=xP(x)=(1×0.08)+(2×0.152)+(3×0.212)+(4×0.18)+(5×0.16)+(6×0.052)+(7×0.02)+(8×0.144)=0.08+0.304+0.636+0.72+0.8+0.312+0.14+1.152=4.144

Therefore, the mean number of hours parked is 4.144.

The standard deviation of the number of hours parked is calculated as follows:

σ=σ2σ=[(xμ)2P(x)]=[(14.144)2(0.08)]+[(24.144)2(0.152)]+[(34.144)2(0.212)]+[(44.144)2(0.18)]+[(54.144)2(0.16)]+[(64.144)2(0.052)]+[(74.144)2(0.02)]+[(84.144)2(0.144)]=(9.88×0.08)+(4.6×0.152)+(1.31×0.212)+(0.02×0.18)+(0.73×0.16)+(3.44×0.052)+(8.16×0.02)+(14.87×0.144)=0.79+0.7+0.28+0.00+0.12+0.18+0.16+2.14=4.3713=2.0908

Therefore, the standard deviation of the number of hours parked is 2.0908.

The typical value that is used to represent the central location of probability distribution is the mean. Therefore, the typical customer parked is 4.144 hours.

c.

Expert Solution
Check Mark
To determine

Calculate the mean and the standard deviation of the amount charged.

Answer to Problem 8E

The mean of the amount charged is 11.532.

The standard deviation of the amount charged is 5.0049.

Explanation of Solution

Mean:

The central location of probability distribution is called mean. It is also called as expected value. The mean of a discrete probability distribution is a weighted average in which the possible random variables are weighted by its corresponding probability values. It is denoted as μ.

Variance:

The variance describes the amount of spread in a probability distribution. It is denoted as σ2. The square root of the variance is the standard deviation.

The mean of the amount charged is calculated as follows:

μ=xP(x)={(3×0.08)+(6×0.152)+(9×0.212)+(12×0.18)+(14×0.16)+(16×0.052)+(18×0.02)+(20×0.144)}=0.24+0.912+1.908+2.16+2.24+0.832+0.36+2.88=11.532

Therefore, the mean of the amount charged is 11.532.

The standard deviation of the amount charged is calculated as follows:

σ=σ2σ=[(xμ)2P(x)]=[(311.532)2(0.08)]+[(611.532)2(0.152)]+[(911.532)2(0.212)]+[(1211.532)2(0.18)]+[(1411.532)2(0.16)]+[(1611.532)2(0.052)]+[(1811.532)2(0.02)]+[(204.144)2(0.144)]=(72.80×0.08)+(30.6×0.152)+(6.41×0.212)+(0.22×0.18)+(6.09×0.16)+(19.96×0.052)+(41.84×0.02)+(71.71×0.144)=5.82+4.65+1.36+0.04+0.97+1.04+0.84+10.33=25.0490=5.0049

Therefore, the standard deviation of the amount charged is 5.0049.

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Chapter 6 Solutions

Loose Leaf for Statistical Techniques in Business and Economics (Mcgraw-hill/Irwin Series in Operations and Decision Sciences)

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