Bundle: Understandable Statistics: Concepts And Methods, 12th + Webassign, Single-term Printed Access Card
12th Edition
ISBN: 9781337605199
Author: Charles Henry Brase, Corrinne Pellillo Brase
Publisher: Brooks Cole
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Chapter 6.6, Problem 13P
(a)
To determine
Find the
(a)
Expert Solution
Answer to Problem 13P
The probability that more than 180 take your free sample is 0.8669.
Explanation of Solution
Calculation:
Conditions for normal approximation to the binomial:
For a binomial experiment with n number of trails, r number of success, probability of success for each trail p and probability of failure
Mean:
The mean formula for the binomial distribution using normal approximation is,
In the formula n denotes number of trails, and p denotes probability of success.
Standard deviation:
The standard deviation formula for the binomial distribution using normal approximation is,
In the formula
Conditions for Continuity correction:
The continuity correction is used for converting the discrete random variable r denoting the number of success to continuous normal random variable x,
- The value x is obtained by subtracting 0.5 from r when r is the left point for an interval. That is,
- The value x is obtained by adding 0.5 from r when r is the right point for an interval. That is,
Z score:
The number of standard deviations the original measurement x is from the value of mean
In the formula, x is the raw score,
Let r denotes the number of customers would take free samples.
The day you are offering free samples, 317 customers pass by your counter. That is,
Checking conditions:
It can be observed that two of the conditions
The mean is,
The standard deviation is,
The probability that more than 180 take your free sample is,
Step by step procedure to obtain standard normal curve using MINITAB software is given below:
- Choose Graph > Probability Distribution Plot choose View Probability > OK.
- From Distribution, choose ‘Normal’ distribution.
- Enter the Mean as 190.2, and Standard deviation as 8.7224.
- Click the Shaded Area tab.
- Choose X Value and Right tail, for the region of the curve to shade.
- Enter the X value as 180.5.
- Click OK.
Output using MINITAB software is given below:
From Minitab output, the probability is 0.8669.
Hence, the probability that more than 180 take your free sample is 0.8669.
(b)
To determine
Find the probability that fewer than 200 take your free sample.
(b)
Expert Solution
Answer to Problem 13P
The probability that fewer than 200 take your free sample is 0.8568.
Explanation of Solution
Calculation:
The probability that fewer than 200 take your free sample is,
Step by step procedure to obtain standard normal curve using MINITAB software is given below:
- Choose Graph > Probability Distribution Plot choose View Probability > OK.
- From Distribution, choose ‘Normal’ distribution.
- Enter the Mean as 190.2, and Standard deviation as 8.7224.
- Click the Shaded Area tab.
- Choose X Value and Left tail, for the region of the curve to shade.
- Enter the X value as 199.5.
- Click OK.
Output using MINITAB software is given below:
From Minitab output, the probability is 0.8568.
Hence, the probability that fewer than 200 take your free sample is 0.8568.
(c)
To determine
Find the probability that a customer takes a free sample and buys the product.
(c)
Expert Solution
Answer to Problem 13P
The probability that a customer takes a free sample and buys the product is 0.222.
Explanation of Solution
Calculation:
Conditional probability:
The conditional probability formula is,
The probability that a customer takes a free sample and buys the product is,
Hence, the probability that a customer takes a free sample and buys the product is 0.222.
(d)
To determine
Find the probability that between 60 and 80 customers would take the free sample and buy the product.
(d)
Expert Solution
Answer to Problem 13P
The probability that between 60 and 80 customers would take the free sample and buy the product is 0.8436.
Explanation of Solution
Calculation:
Let r denotes the number of customer takes a free sample and buys the product.
The day you are offering free samples, 317 customers pass by your counter. That is,
Checking conditions:
It can be observed that two of the conditions
The mean is,
The standard deviation is,
The probability that between 60 and 80 customers would take the free sample and buy the product is,
Step by step procedure to obtain standard normal curve using MINITAB software is given below:
- Choose Graph > Probability Distribution Plot choose View Probability > OK.
- From Distribution, choose ‘Normal’ distribution.
- Enter the Mean as 70.374, and Standard deviation as 7.3994.
- Click the Shaded Area tab.
- Choose X Value and Middle, for the region of the curve to shade.
- Enter the X value 1 as 59.5, the X value 2 as 80.5.
- Click OK.
Output using MINITAB software is given below:
From Minitab output, the probability is 0.8436.
Hence, the probability that between 60 and 80 customers would take the free sample and buy the product is 0.8436.
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Students have asked these similar questions
Microsoft Excel snapshot for random sampling: Also note the formula used for the last
column
02
x✓ fx =INDEX(5852:58551, RANK(C2, $C$2:$C$51))
A
B
1
No.
States
2
1
ALABAMA
Rand No.
0.925957526
3
2
ALASKA
0.372999976
4
3
ARIZONA
0.941323044
5
4 ARKANSAS
0.071266381
Random Sample
CALIFORNIA
NORTH CAROLINA
ARKANSAS
WASHINGTON
G7
Microsoft Excel snapshot for systematic sampling:
xfx INDEX(SD52:50551, F7)
A
B
E
F
G
1
No.
States
Rand No. Random Sample
population
50
2
1 ALABAMA
0.5296685 NEW HAMPSHIRE
sample
10
3
2 ALASKA
0.4493186 OKLAHOMA
k
5
4
3 ARIZONA
0.707914 KANSAS
5
4 ARKANSAS 0.4831379 NORTH DAKOTA
6
5 CALIFORNIA 0.7277162 INDIANA
Random Sample
Sample Name
7
6 COLORADO 0.5865002 MISSISSIPPI
8
7:ONNECTICU 0.7640596 ILLINOIS
9
8 DELAWARE 0.5783029 MISSOURI
525
10
15
INDIANA
MARYLAND
COLORADO
Suppose the Internal Revenue Service reported that the mean tax refund for the year 2022 was $3401. Assume the standard deviation is $82.5 and that the amounts refunded follow a normal probability distribution. Solve the following three parts? (For the answer to question 14, 15, and 16, start with making a bell curve. Identify on the bell curve where is mean, X, and area(s) to be determined.
1.What percent of the refunds are more than $3,500?
2. What percent of the refunds are more than $3500 but less than $3579?
3. What percent of the refunds are more than $3325 but less than $3579?
A normal distribution has a mean of 50 and a standard deviation of 4. Solve the following three parts?
1. Compute the probability of a value between 44.0 and 55.0.
(The question requires finding probability value between 44 and 55. Solve it in 3 steps.
In the first step, use the above formula and x = 44, calculate probability value.
In the second step repeat the first step with the only difference that x=55.
In the third step, subtract the answer of the first part from the answer of the second part.)
2. Compute the probability of a value greater than 55.0.
Use the same formula, x=55 and subtract the answer from 1.
3. Compute the probability of a value between 52.0 and 55.0.
(The question requires finding probability value between 52 and 55. Solve it in 3 steps.
In the first step, use the above formula and x = 52, calculate probability value.
In the second step repeat the first step with the only difference that x=55.
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Chapter 6 Solutions
Bundle: Understandable Statistics: Concepts And Methods, 12th + Webassign, Single-term Printed Access Card
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Prob. 17PCh. 6.2 - Prob. 18PCh. 6.2 - Prob. 19PCh. 6.2 - Basic Computation: Finding Areas Under the...Ch. 6.2 - Prob. 21PCh. 6.2 - Prob. 22PCh. 6.2 - Prob. 23PCh. 6.2 - Prob. 24PCh. 6.2 - Prob. 25PCh. 6.2 - Prob. 26PCh. 6.2 - Prob. 27PCh. 6.2 - Prob. 28PCh. 6.2 - Prob. 29PCh. 6.2 - Basic Computation: Finding Areas Under the...Ch. 6.2 - Prob. 31PCh. 6.2 - Prob. 32PCh. 6.2 - Basic Computation: Finding Probabilities In...Ch. 6.2 - Prob. 34PCh. 6.2 - Prob. 35PCh. 6.2 - Prob. 36PCh. 6.2 - Prob. 37PCh. 6.2 - Basic Computation: Finding Probabilities In...Ch. 6.2 - Prob. 39PCh. 6.2 - Prob. 40PCh. 6.2 - Prob. 41PCh. 6.2 - Prob. 42PCh. 6.2 - Basic Computation: Finding Probabilities In...Ch. 6.2 - Prob. 44PCh. 6.2 - Basic Computation: Finding Probabilities In...Ch. 6.2 - Prob. 46PCh. 6.2 - Prob. 47PCh. 6.2 - Basic Computation: Finding Probabilities In...Ch. 6.2 - Prob. 49PCh. 6.2 - Prob. 50PCh. 6.3 - Statistical Literacy Consider a normal...Ch. 6.3 - Statistical Literacy Suppose 5% of the area under...Ch. 6.3 - 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