ELEM. STATISTICS TEXT W/ MANUAL+CONNECT
ELEM. STATISTICS TEXT W/ MANUAL+CONNECT
1st Edition
ISBN: 9781260722031
Author: Navidi
Publisher: McGraw-Hill Publishing Co.
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Textbook Question
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Chapter 7.4, Problem 21E

Future scientists: Education professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A random sample of 85 freshmen is selected.

  1. Is it appropriate to use the normal approximation to find the probability that less than 45% of the freshmen in the sample have expressed interest in a STEM discipline? If so, find the probability. If not, explain why not.
  2. A new sample of 150 freshmen is selected. Find the probability that less than of the freshmen in this sample have expressed interest in a STEM discipline.
  3. Find the probability that the proportion of freshmen in the sample of 150 who have expressed interest in a STEM discipline is between 0.40 and 0.45.
  4. Find the probability that more than 38% of the freshmen in the sample of 150 have expressed interest in a STEM discipline.
  5. Would it be unusual if less than 42% of the freshmen in the sample of 150 have expressed interest in a STEM discipline?

a.

Expert Solution
Check Mark
To determine

To find:Whether it is appropriate to use the normal approximation to find the probability that less than 45% of freshmenhave expressed interest in a STEM discipline.

Answer to Problem 21E

It is possible to use the normal distribution. The probability that less than 45% of freshmen have expressed interest in a STEM discipline is 0.3557.

Explanation of Solution

Given information:Educational professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A randomsample of 85 freshmen is selected.

Formula used:A random variable is normally distributed when

  np,n(1p)10

Where n is the number of sample and p is the success probability.

The mean is μp^=p

The standard deviation is σp^=p( 1p)n

Calculation:

47% of high school graduates have expressed interest in a STEM discipline and a random sample of 85 freshmen is selected.  (Given)

  p=0.47 and n=85

Then

  np=(85)(0.47)=39.9510n(1p)=(85)(10.47)=45.0510

Therefore, it is possible to use thenormal distribution.

Let p^ be the number of sample of freshmenis selected.

The mean is μp^=p=0.47

The standard deviation is σp^=p( 1p)n

  σp^= 0.47( 10.47 ) 85=0.0541

We need to find P(p^<0.45) we will compute the area to the left of 0.45.

The z-score is given by

  z=p^μ p ^ σ p ^ =0.450.470.0541=0.3697

  ELEM. STATISTICS TEXT W/ MANUAL+CONNECT, Chapter 7.4, Problem 21E , additional homework tip 1

Therefore, from the standardize normal distribution table, the area to the left of z=0.3697 is 0.3557.

Hence, the probability that less than 45% of freshmen have expressed interest in a STEM discipline is 0.3557.

b.

Expert Solution
Check Mark
To determine

To find:The probability that less than 45% of freshmen have expressed interest in a STEM discipline.

Answer to Problem 21E

The probability less than 45% of freshmen have expressed interest in a STEM discipline is 0.3085.

Explanation of Solution

Given information: Educational professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A random sample of 150 freshmen is selected.

Formula used:

The mean is μp^=p

The standard deviation is σp^=p( 1p)n

The z-score is given by

  z=p^μp^σp^

Calculation:

Let p^ be the number of sample of freshmen is selected.

The mean is μp^=p=0.47

The standard deviation is σp^=p( 1p)n

  σp^= 0.47( 10.47 ) 150=0.0408

We need to find P(p^<0.45) we will compute the area to the left of 0.45.

The z-score is given by

  z=p^μ p ^ σ p ^ =0.450.470.0408=0.4902

  ELEM. STATISTICS TEXT W/ MANUAL+CONNECT, Chapter 7.4, Problem 21E , additional homework tip 2

Therefore, from the standardize normal distribution table, the area to the left of z=0.4902 is 0.3085.

Hence, the probability that less than 45% of freshmen have expressed interest in a STEM discipline is 0.3085.

c.

Expert Solution
Check Mark
To determine

To find: The probability that the sample proportion of the freshmen who have expressed interest in a STEM discipline is between 0.40 and 0.45.

Answer to Problem 21E

The probability that the sample proportion of freshmen who have expressed interest in a STEM discipline is between 0.40 and 0.45 is 0.2684.

Explanation of Solution

Given information:Educational professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A random sample of 150 freshmen is selected.

Formula used:The z-score is given by

  z=p^μp^σp^

Calculation:

Let p^ be the number of sample of freshmenis chosen.

The mean is μp^=0.47

The standard deviation is σp^=0.0408 .

We need to find P(0.40<p^<0.45) we will compute the area between 0.05 and 0.10.

The z-score is given by

  z=p^μ p ^ σ p ^ =0.400.470.0408=1.7157z=p^μ p ^ σ p ^ =0.450.470.0408=0.4902

  ELEM. STATISTICS TEXT W/ MANUAL+CONNECT, Chapter 7.4, Problem 21E , additional homework tip 3

Therefore, from the standardize normal distribution table, the area to P(1.7157<z<0.4902) is 0.2684.

Hence, the probability that the sample proportion of the freshmen who have expressed interest in a STEM discipline is between 0.40 and 0.45 is 0.2684.

d.

Expert Solution
Check Mark
To determine

To find: The probability that more than 38% of freshmen in the sample of 150 have expressed interest in a STEM discipline.

Answer to Problem 21E

The probability that more than 38% of freshmen in the sample of 150 have expressed interest in a STEM discipline is 0.9878.

Explanation of Solution

Given information:Educational professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A random sample of 150 freshmen is selected.

Formula used:The z-score is given by

  z=p^μp^σp^

Calculation:

Let p^ be the number of sample of freshmen is chosen.

The mean is μp^=0.47

The standard deviation is σp^=0.0408 .

We need to find P(p^>0.38) we will compute the area to the right of 0.38.

The z-score is given by

  z=p^μ p ^ σ p ^ =0.380.470.0408=2.2059

  ELEM. STATISTICS TEXT W/ MANUAL+CONNECT, Chapter 7.4, Problem 21E , additional homework tip 4

Therefore, from the standardize normal distribution table, the area to the right of z=2.2059 is 0.9878.

Hence, the probability that more than 38% of freshmen in the sample of 150 have expressed interest in a STEM discipline is 0.9878.

e.

Expert Solution
Check Mark
To determine

To find: Whether it is unusual if less than 42% of the freshmen in the sample of 150have expressed interest in a STEM discipline.

Answer to Problem 21E

Less than 42% of the freshmen in the sample of 150have expressed interest in a STEM discipline is not unusual.

Explanation of Solution

Given information:Educational professionals refer to science, technology, engineering and mathematics as the STEM disciplines. A recent ACT Condition and Career Readiness Report states that 47% of high school graduates have expressed interest in a STEM discipline. A random sample of 150 freshmen is selected.

Formula used:The z-score is given by

  z=p^μp^σp^

Calculation:

Let p^ be the number of sample of freshmenis chosen.

The mean is μp^=0.47

The standard deviation is σp^=0.0408 .

We will compute the probability that sample proportion is less than 0.42. If the probability is less than 0.05, then the event is unusual.

We need to find P(p^<0.42) we will compute the area to the left of 0.42.

The z-score is given by

  z=p^μ p ^ σ p ^ =0.420.470.0408=1.2255

  ELEM. STATISTICS TEXT W/ MANUAL+CONNECT, Chapter 7.4, Problem 21E , additional homework tip 5

Therefore, from the standardize normal distribution table, the area to the right of z=1.2255 is 0.1949.

Thus, the probability that less than 42% of the freshmen in the sample of 150have expressed interest in a STEM discipline is 0.1056.

Since the probability is greater than 0.05, the given event isnot unusual.

Hence,less than 42% of the freshmen in the sample of 150have expressed interest in a STEM discipline is not unusual.

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Chapter 7 Solutions

ELEM. STATISTICS TEXT W/ MANUAL+CONNECT

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