Check whether the mean brightness exceeds the specification or not.

Question

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Answer 1

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

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Answer 2

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

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Answer 3

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

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Answer 4

Question

Definition Definition Measure of central tendency that is the average of a given data set. The mean value is evaluated as the quotient of the sum of all observations by the sample size. The mean, in contrast to a median, is affected by extreme values. Very large or very small values can distract the mean from the center of the data. Arithmetic mean: The most common type of mean is the arithmetic mean. It is evaluated using the formula: μ = 1 N ∑ i = 1 N x i Other types of means are the geometric mean, logarithmic mean, and harmonic mean. Geometric mean: The nth root of the product of n observations from a data set is defined as the geometric mean of the set: G = x 1 x 2 ... x n n Logarithmic mean: The difference of the natural logarithms of the two numbers, divided by the difference between the numbers is the logarithmic mean of the two numbers. The logarithmic mean is used particularly in heat transfer and mass transfer. ln x 2 − ln x 1 x 2 − x 1 Harmonic mean: The inverse of the arithmetic mean of the inverses of all the numbers in a data set is the harmonic mean of the data. 1 1 x 1 + 1 x 2 + ...

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

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Answer 5

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

Answer 6

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

Answer 7

Chapter 9, Problem 109CE

a.

To determine

Check whether the mean brightness exceeds the specification or not.

Answer 8

a.

Expert Solution

Answer to Problem 109CE

There is evidence to infer that the mean brightness exceeds the specification.

Answer 9

a.

Expert Solution

Answer 10

a.

Expert Solution

Answer 11

Expert Solution

Answer 12

Explanation of Solution

Calculation:

The given information is that, the data represents the sample of 24 test sheets from a day’s production run.

State the hypotheses:

Null hypothesis:

H0:μ≤106

That is, the mean brightness is not greater than 106.

Alternative hypothesis:

H1:μ>106

That is, the mean brightness is greater than 106.

Critical value:

For right tailed test,

1−α=1−0.005=0.995

Degrees of freedom:

df=n−1=24−1=23

Software procedure:

Step-by-step software procedure to obtain critical value using EXCEL is as follows:

Open an EXCEL file.
In cell A1, enter the formula “=T.INV(0.995,23)”
Output using Excel software is given below:

From the output, the critical value is 2.807.

Decision rule for right-tailed test at α=0.005:

If tcalc>+2.807, then reject the null hypothesis.

Sample mean and variance:
The formula for mean is,
x¯=∑xin
The formula for standard deviation is,
s=∑(xi−x¯)2n−1
The value of ∑(xi−x¯)2 and mean is calculated as follows:

Brightness	(xi−x¯)	(xi−x¯)2
106.98	–0.01670	0.000279
107.02	0.02330	0.000543
106.99	–0.00670	0.0000449
106.98	–0.01670	0.000279
107.06	0.06330	0.004007
107.05	0.05330	0.002841
107.03	0.03330	0.001109
107.04	0.04330	0.001875
107.01	0.01330	0.000177
107.00	0.00330	0.0000109
107.02	0.02330	0.000543
107.04	0.04330	0.001875
107.00	0.00330	0.0000109
106.98	–0.01670	0.000279
106.91	–0.08670	0.007517
106.93	–0.06670	0.004449
107.01	0.01330	0.000177
106.98	–0.01670	0.000279
106.97	–0.02670	0.000713
106.99	–0.00670	0.0000449
106.94	–0.05670	0.003215
106.98	–0.01670	0.000279
107.03	0.03330	0.001109
106.98	–0.01670	0.000279
∑xi=2,567.92		∑(xi−x¯)2=0.031933
x¯=106.9967		∑(xi−x¯)2=0.031933

The standard deviation is,
s=0.03193324−1=0.001388=0.0373
Thus, the standard deviation is 0.0373.
Test statistic:

The formula for test statistic is,

tcalc=x¯−μ0sn

Where x¯ is the sample mean, μ0 is the population mean, s is the sample standard deviation and n is the sample size.

Substitute x¯=106.9967, μ0=106, s=0.0373 and n=24 in the test statistic formula.

tcalc=106.9967−1060.037324=0.9967(0.03734.8990)=0.99670.007614=130.9

Thus, the test statistic is 130.9.

Conclusion for critical value method:

Here, the test statistic is greater than the critical value.

That is, tcalc(=130.9)>+2.807

Therefore, the null hypothesis is rejected.

Hence, there is evidence to infer that the mean brightness exceeds the specification.

Answer 13

b.

To determine

Check whether the sample shows that σ2<0.0025.

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

Answer 14

b.

To determine

Check whether the sample shows that σ2<0.0025.

Answer 15

b.

Expert Solution

Answer to Problem 109CE

The sample does not show that σ2<0.0025.

Answer 16

b.

Expert Solution

Answer 17

b.

Expert Solution

Answer 18

Expert Solution

Answer 19

Explanation of Solution

Calculation:

Here, the hypotheses test is left-tailed test.

The test hypotheses are given below:

Null hypothesis:

H0:σ2≥0.0025

That is, the true variance is greater than or equal to 0.0025.

Alternative hypothesis:

H1:σ2<0.0025

That is, the true variance is less than 0.0025.

Degrees of freedom:

df=n−1=24−1=23

Critical value:

From “Appendix E: CHI-SQAURE CRITICAL VALUES”,

Locate the value 23 in the first column of the table.
Locate the value 0.995 in the first row of the table.
The intersecting value of row and column is 9.26.

Thus, the lower critical value is 9.26.

Decision rule for left-tailed test:

If χcalc2<χlower2(=9.26), then reject the null hypothesis.
Otherwise, do not reject the null hypothesis
Test statistic:
χcalc2=(n−1)s2σ02=(24−1)(0.0373)20.0025=0.03200.0025=12.8
Thus, the test statistic is 12.8.

Conclusion for critical value method:

Here, the test statistic is greater than critical value.

That is, χcalc2(=12.8)>χlower2(=9.26)

Therefore, the null hypothesis is not rejected.

Hence, the sample does not show that σ2<0.0025.

Answer 20

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Check whether the mean brightness exceeds the specification or not.

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Check whether the mean brightness exceeds the specification or not.

Answer to Problem 109CE

Explanation of Solution

Check whether the sample shows that σ2<0.0025.

Answer to Problem 109CE

Explanation of Solution

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