Title: Hypothesis Testing with One Sample
1Chapter 7
- Hypothesis Testing with One Sample
2Chapter Outline
- 7.1 Introduction to Hypothesis Testing
- 7.2 Hypothesis Testing for the Mean (Large
Samples) - 7.3 Hypothesis Testing for the Mean (Small
Samples) - 7.4 Hypothesis Testing for Proportions
- 7.5 Hypothesis Testing for Variance and Standard
Deviation
3Section 7.1
- Introduction to Hypothesis Testing
4Section 7.1 Objectives
- State a null hypothesis and an alternative
hypothesis - Identify type I and type I errors and interpret
the level of significance - Determine whether to use a one-tailed or
two-tailed statistical test and find a p-value - Make and interpret a decision based on the
results of a statistical test - Write a claim for a hypothesis test
5Hypothesis Tests
- Hypothesis test
- A process that uses sample statistics to test a
claim about the value of a population parameter.
- For example An automobile manufacturer
advertises that its new hybrid car has a mean
mileage of 50 miles per gallon. To test this
claim, a sample would be taken. If the sample
mean differs enough from the advertised mean, you
can decide the advertisement is wrong.
6Hypothesis Tests
- Statistical hypothesis
- A statement, or claim, about a population
parameter. - Need a pair of hypotheses
- one that represents the claim
- the other, its complement
- When one of these hypotheses is false, the other
must be true.
7Stating a Hypothesis
- Null hypothesis
- A statistical hypothesis that contains a
statement of equality such as ?, , or ?. - Denoted H0 read H subzero or H naught.
- Alternative hypothesis
- A statement of inequality such as gt, ?, or lt.
- Must be true if H0 is false.
- Denoted Ha read H sub-a.
8Stating a Hypothesis
- To write the null and alternative hypotheses,
translate the claim made about the population
parameter from a verbal statement to a
mathematical statement. - Then write its complement.
H0 µ k Ha µ gt k
H0 µ k Ha µ lt k
H0 µ k Ha µ ? k
- Regardless of which pair of hypotheses you use,
you always assume µ k and examine the sampling
distribution on the basis of this assumption.
9Example Stating the Null and Alternative
Hypotheses
- Write the claim as a mathematical sentence. State
the null and alternative hypotheses and identify
which represents the claim. - A university publicizes that the proportion of
its students who graduate in 4 years is 82.
Solution
H0 Ha
Equality condition
(Claim)
p 0.82
Complement of H0
p ? 0.82
10Example Stating the Null and Alternative
Hypotheses
- Write the claim as a mathematical sentence.
State the null and alternative hypotheses and
identify which represents the claim. - A water faucet manufacturer announces that the
mean flow rate of a certain type of faucet is
less than 2.5 gallons per minute.
Solution
H0 Ha
Complement of Ha
µ 2.5 gallons per minute
Inequality condition
(Claim)
µ lt 2.5 gallons per minute
11Example Stating the Null and Alternative
Hypotheses
- Write the claim as a mathematical sentence.
State the null and alternative hypotheses and
identify which represents the claim. - A cereal company advertises that the mean weight
of the contents of its 20-ounce size cereal boxes
is more than 20 ounces.
Solution
H0 Ha
µ 20 ounces
Complement of Ha
Inequality condition
(Claim)
µ gt 20 ounces
12Types of Errors
- No matter which hypothesis represents the claim,
always begin the hypothesis test assuming that
the equality condition in the null hypothesis is
true. - At the end of the test, one of two decisions will
be made - reject the null hypothesis
- fail to reject the null hypothesis
- Because your decision is based on a sample, there
is the possibility of making the wrong decision.
13Types of Errors
Actual Truth of H0 Actual Truth of H0
Decision H0 is true H0 is false
Do not reject H0 Correct Decision Type II Error
Reject H0 Type I Error Correct Decision
- A type I error occurs if the null hypothesis is
rejected when it is true. - A type II error occurs if the null hypothesis is
not rejected when it is false.
14Example Identifying Type I and Type II Errors
- The USDA limit for salmonella contamination for
chicken is 20. A meat inspector reports that the
chicken produced by a company exceeds the USDA
limit. You perform a hypothesis test to determine
whether the meat inspectors claim is true. When
will a type I or type II error occur? Which is
more serious? (Source United States Department
of Agriculture)
15Solution Identifying Type I and Type II Errors
- Let p represent the proportion of chicken that is
contaminated.
H0 Ha
Hypotheses
p 0.2
p gt 0.2
(Claim)
16Solution Identifying Type I and Type II Errors
H0 Ha
Hypotheses
p 0.2
(Claim)
p gt 0.2
A type I error is rejecting H0 when it is true.
The actual proportion of contaminated chicken is
less than or equal to 0.2, but you decide to
reject H0.
A type II error is failing to reject H0 when it
is false.
The actual proportion of contaminated chicken is
greater than 0.2, but you do not reject H0.
17Solution Identifying Type I and Type II Errors
H0 Ha
Hypotheses
p 0.2
(Claim)
p gt 0.2
- With a type I error, you might create a health
scare and hurt the sales of chicken producers who
were actually meeting the USDA limits. - With a type II error, you could be allowing
chicken that exceeded the USDA contamination
limit to be sold to consumers. - A type II error could result in sickness or even
death.
18Level of Significance
- Level of significance
- Your maximum allowable probability of making a
type I error. - Denoted by ?, the lowercase Greek letter alpha.
- By setting the level of significance at a small
value, you are saying that you want the
probability of rejecting a true null hypothesis
to be small. - Commonly used levels of significance
- ? 0.10 ? 0.05 ? 0.01
- P(type II error) ß (beta)
19Statistical Tests
- After stating the null and alternative hypotheses
and specifying the level of significance, a
random sample is taken from the population and
sample statistics are calculated. - The statistic that is compared with the parameter
in the null hypothesis is called the test
statistic.
20P-values
- P-value (or probability value)
- The probability, if the null hypothesis is true,
of obtaining a sample statistic with a value as
extreme or more extreme than the one determined
from the sample data. - Depends on the nature of the test.
21Nature of the Test
- Three types of hypothesis tests
- left-tailed test
- right-tailed test
- two-tailed test
- The type of test depends on the region of the
sampling distribution that favors a rejection of
H0. - This region is indicated by the alternative
hypothesis.
22Left-tailed Test
- The alternative hypothesis Ha contains the
less-than inequality symbol (lt).
H0 µ ? k Ha µ lt k
23Right-tailed Test
- The alternative hypothesis Ha contains the
greater-than inequality symbol (gt).
H0 µ k Ha µ gt k
24Two-tailed Test
- The alternative hypothesis Ha contains the not
equal inequality symbol (?). Each tail has an
area of ½P.
H0 µ k Ha µ ? k
25Example Identifying The Nature of a Test
- For each claim, state H0 and Ha. Then determine
whether the hypothesis test is a left-tailed,
right-tailed, or two-tailed test. Sketch a normal
sampling distribution and shade the area for the
P-value. - A university publicizes that the proportion of
its students who graduate in 4 years is 82.
Solution
p 0.82
H0 Ha
p ? 0.82
Two-tailed test
26Example Identifying The Nature of a Test
- For each claim, state H0 and Ha. Then determine
whether the hypothesis test is a left-tailed,
right-tailed, or two-tailed test. Sketch a normal
sampling distribution and shade the area for the
P-value. - A water faucet manufacturer announces that the
mean flow rate of a certain type of faucet is
less than 2.5 gallons per minute.
Solution
µ 2.5 gpm
H0 Ha
µ lt 2.5 gpm
Left-tailed test
27Example Identifying The Nature of a Test
- For each claim, state H0 and Ha. Then determine
whether the hypothesis test is a left-tailed,
right-tailed, or two-tailed test. Sketch a normal
sampling distribution and shade the area for the
P-value. - A cereal company advertises that the mean weight
of the contents of its 20-ounce size cereal boxes
is more than 20 ounces.
Solution
µ 20 oz
H0 Ha
µ gt 20 oz
Right-tailed test
28Making a Decision
- Decision Rule Based on P-value
- Compare the P-value with ?.
- If P ? ?, then reject H0.
- If P gt ?, then fail to reject H0.
Claim Claim
Decision Claim is H0 Claim is Ha
Reject H0
Fail to reject H0
There is enough evidence to reject the claim
There is enough evidence to support the claim
There is not enough evidence to reject the claim
There is not enough evidence to support the claim
29Example Interpreting a Decision
- You perform a hypothesis test for the following
claim. How should you interpret your decision if
you reject H0? If you fail to reject H0? - H0 (Claim) A university publicizes that the
proportion of its students who graduate in 4
years is 82.
30Solution Interpreting a Decision
- The claim is represented by H0.
- If you reject H0 you should conclude there is
sufficient evidence to indicate that the
universitys claim is false. - If you fail to reject H0, you should conclude
there is insufficient evidence to indicate that
the universitys claim (of a four-year graduation
rate of 82) is false.
31Example Interpreting a Decision
- You perform a hypothesis test for the following
claim. How should you interpret your decision if
you reject H0? If you fail to reject H0? - Ha (Claim) Consumer Reports states that the mean
stopping distance (on a dry surface) for a Honda
Civic is less than 136 feet.
- Solution
- The claim is represented by Ha.
- H0 is the mean stopping distanceis greater than
or equal to 136 feet.
32Solution Interpreting a Decision
- If you reject H0 you should conclude there is
enough evidence to support Consumer Reports
claim that the stopping distance for a Honda
Civic is less than 136 feet. - If you fail to reject H0, you should conclude
there is not enough evidence to support Consumer
Reports claim that the stopping distance for a
Honda Civic is less than 136 feet.
33Steps for Hypothesis Testing
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - H0 ? Ha ?
- Specify the level of significance.
- a ?
- Determine the standardized sampling distribution
and draw its graph. - Calculate the test statisticand its standardized
value.Add it to your sketch.
34Steps for Hypothesis Testing
- Find the P-value.
- Use the following decision rule.
- Write a statement to interpret the decision in
the context of the original claim.
Is the P-value less than or equal to the level of
significance?
Fail to reject H0.
Reject H0.
35Section 7.1 Summary
- Stated a null hypothesis and an alternative
hypothesis - Identified type I and type I errors and
interpreted the level of significance - Determined whether to use a one-tailed or
two-tailed statistical test and found a p-value - Made and interpreted a decision based on the
results of a statistical test - Wrote a claim for a hypothesis test
36Section 7.2
- Hypothesis Testing for the Mean (Large Samples)
37Section 7.2 Objectives
- Find P-values and use them to test a mean µ
- Use P-values for a z-test
- Find critical values and rejection regions in a
normal distribution - Use rejection regions for a z-test
38Using P-values to Make a Decision
- Decision Rule Based on P-value
- To use a P-value to make a conclusion in a
hypothesis test, compare the P-value with ?. - If P ? ?, then reject H0.
- If P gt ?, then fail to reject H0.
39Example Interpreting a P-value
- The P-value for a hypothesis test is P 0.0237.
What is your decision if the level of
significance is - 0.05?
- 0.01?
SolutionBecause 0.0237 lt 0.05, you should
reject the null hypothesis.
Solution Because 0.0237 gt 0.01, you should fail
to reject the null hypothesis.
40Finding the P-value
- After determining the hypothesis tests
standardized test statistic and the test
statistics corresponding area, do one of the
following to find the P-value. - For a left-tailed test, P (Area in left tail).
- For a right-tailed test, P (Area in right
tail). - For a two-tailed test, P 2(Area in tail of test
statistic).
41Example Finding the P-value
- Find the P-value for a left-tailed hypothesis
test with a test statistic of z -2.23. Decide
whether to reject H0 if the level of significance
is a 0.01.
SolutionFor a left-tailed test, P (Area in
left tail)
P 0.0129
Because 0.0129 gt 0.01, you should fail to reject
H0
42Example Finding the P-value
- Find the P-value for a two-tailed hypothesis test
with a test statistic of z 2.14. Decide whether
to reject H0 if the level of significance is a
0.05.
SolutionFor a two-tailed test, P 2(Area in
tail of test statistic)
1 0.9838 0.0162
P 2(0.0162) 0.0324
0.9838
Because 0.0324 lt 0.05, you should reject H0
43Z-Test for a Mean µ
- Can be used when the population is normal and ?
is known, or for any population when the sample
size n is at least 30. - The test statistic is the sample mean
- The standardized test statistic is z
- When n ? 30, the sample standard deviation s can
be substituted for ?.
44Using P-values for a z-Test for Mean µ
In Words In Symbols
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - Specify the level of significance.
- Determine the standardized test statistic.
- Find the area that corresponds to z.
State H0 and Ha.
Identify ?.
Use Table 4 in Appendix B.
45Using P-values for a z-Test for Mean µ
In Words In Symbols
- Find the P-value.
- For a left-tailed test, P (Area in left tail).
- For a right-tailed test, P (Area in right
tail). - For a two-tailed test, P 2(Area in tail of test
statistic). - Make a decision to reject or fail to reject the
null hypothesis. - Interpret the decision in the context of the
original claim.
Reject H0 if P-value is less than or equal to ?.
Otherwise, fail to reject H0.
46Example Hypothesis Testing Using P-values
- In an advertisement, a pizza shop claims that its
mean delivery time is less than 30 minutes. A
random selection of 36 delivery times has a
sample mean of 28.5 minutes and a standard
deviation of 3.5 minutes. Is there enough
evidence to support the claim at ? 0.01? Use a
P-value.
47Solution Hypothesis Testing Using P-values
0.01
0.0051 lt 0.01 Reject H0
At the 1 level of significance, you have
sufficient evidence to conclude the mean delivery
time is less than 30 minutes.
48Example Hypothesis Testing Using P-values
- You think that the average franchise investment
information shown in the graph is incorrect, so
you randomly select 30 franchises and determine
the necessary investment for each. The sample
mean investment is 135,000 with astandard
deviation of 30,000. Is there enough evidence
to support your claim at ? 0.05? Use a
P-value.
49Solution Hypothesis Testing Using P-values
P 2(0.0655) 0.1310
0.05
0.1310 gt 0.05 Fail to reject H0
At the 5 level of significance, there is not
sufficient evidence to conclude the mean
franchise investment is different from 143,260.
50Rejection Regions and Critical Values
- Rejection region (or critical region)
- The range of values for which the null hypothesis
is not probable. - If a test statistic falls in this region, the
null hypothesis is rejected. - A critical value z0 separates the rejection
region from the nonrejection region.
51Rejection Regions and Critical Values
- Finding Critical Values in a Normal Distribution
- Specify the level of significance ?.
- Decide whether the test is left-, right-, or
two-tailed. - Find the critical value(s) z0. If the hypothesis
test is - left-tailed, find the z-score that corresponds to
an area of ?, - right-tailed, find the z-score that corresponds
to an area of 1 ?, - two-tailed, find the z-score that corresponds to
½? and 1 ½?. - Sketch the standard normal distribution. Draw a
vertical line at each critical value and shade
the rejection region(s).
52Example Finding Critical Values
- Find the critical value and rejection region for
a two-tailed test with ? 0.05.
Solution
1 a 0.95
½a 0.025
½a 0.025
z0 1.96
-z0 -1.96
The rejection regions are to the left of -z0
-1.96 and to the right of z0 1.96.
53Decision Rule Based on Rejection Region
- To use a rejection region to conduct a hypothesis
test, calculate the standardized test statistic,
z. If the standardized test statistic - is in the rejection region, then reject H0.
- is not in the rejection region, then fail to
reject H0.
54Using Rejection Regions for a z-Test for a Mean µ
In Words In Symbols
State H0 and Ha.
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - Specify the level of significance.
- Sketch the sampling distribution.
- Determine the critical value(s).
- Determine the rejection region(s).
Identify ?.
Use Table 4 in Appendix B.
55Using Rejection Regions for a z-Test for a Mean µ
In Words In Symbols
- Find the standardized test statistic.
- Make a decision to reject or fail to reject the
null hypothesis. - Interpret the decision in the context of the
original claim.
If z is in the rejection region, reject H0.
Otherwise, fail to reject H0.
56Example Testing with Rejection Regions
- Employees in a large accounting firm claim that
the mean salary of the firms accountants is less
than that of its competitors, which is 45,000.
A random sample of 30 of the firms accountants
has a mean salary of 43,500 with a standard
deviation of 5200. At a 0.05, test the
employees claim.
57Solution Testing with Rejection Regions
0.05
Fail to reject H0
At the 5 level of significance, there is not
sufficient evidence to support the employees
claim that the mean salary is less than 45,000.
-1.645
-1.58
58Example Testing with Rejection Regions
- The U.S. Department of Agriculture reports that
the mean cost of raising a child from birth to
age 2 in a rural area is 10,460. You believe
this value is incorrect, so you select a random
sample of 900 children (age 2) and find that the
mean cost is 10,345 with a standard deviation of
1540. At a 0.05, is there enough evidence to
conclude that the mean cost is different from
10,460? (Adapted from U.S. Department of
Agriculture Center for Nutrition Policy and
Promotion)
59Solution Testing with Rejection Regions
0.05
Reject H0
At the 5 level of significance, you have enough
evidence to conclude the mean cost of raising a
child from birth to age 2 in a rural area is
significantly different from 10,460.
-1.96
1.96
-2.24
60Section 7.2 Summary
- Found P-values and used them to test a mean µ
- Used P-values for a z-test
- Found critical values and rejection regions in a
normal distribution - Used rejection regions for a z-test
61Section 7.3
- Hypothesis Testing for the Mean (Small Samples)
62Section 7.3 Objectives
- Find critical values in a t-distribution
- Use the t-test to test a mean µ
- Use technology to find P-values and use them with
a t-test to test a mean µ
63Finding Critical Values in a t-Distribution
- Identify the level of significance ?.
- Identify the degrees of freedom d.f. n 1.
- Find the critical value(s) using Table 5 in
Appendix B in the row with n 1 degrees of
freedom. If the hypothesis test is - left-tailed, use One Tail, ? column with a
negative sign, - right-tailed, use One Tail, ? column with a
positive sign, - two-tailed, use Two Tails, ? column with a
negative and a positive sign.
64Example Finding Critical Values for t
- Find the critical value t0 for a left-tailed test
given? 0.05 and n 21.
- Solution
- The degrees of freedom are d.f. n 1 21 1
20. - Look at a 0.05 in the One Tail, ? column.
- Because the test is left-tailed, the critical
value is negative.
65Example Finding Critical Values for t
- Find the critical values t0 and -t0 for a
two-tailed test given ? 0.05 and n 26.
- Solution
- The degrees of freedom are d.f. n 1 26 1
25. - Look at a 0.05 in the Two Tail, ? column.
- Because the test is two-tailed, one critical
value is negative and one is positive.
66t-Test for a Mean µ (n lt 30, ? Unknown)
- t-Test for a Mean
- A statistical test for a population mean.
- The t-test can be used when the population is
normal or nearly normal, ? is unknown, and n lt
30. - The test statistic is the sample mean
- The standardized test statistic is t.
- The degrees of freedom are d.f. n 1.
67Using the t-Test for a Mean µ(Small Sample)
In Words In Symbols
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - Specify the level of significance.
- Identify the degrees of freedom and sketch the
sampling distribution. - Determine any critical value(s).
State H0 and Ha.
Identify ?.
d.f. n 1.
Use Table 5 in Appendix B.
68Using the t-Test for a Mean µ(Small Sample)
In Words In Symbols
- Determine any rejection region(s).
- Find the standardized test statistic.
- Make a decision to reject or fail to reject the
null hypothesis. - Interpret the decision in the context of the
original claim.
If t is in the rejection region, reject H0.
Otherwise, fail to reject H0.
69Example Testing µ with a Small Sample
- A used car dealer says that the mean price of a
2005 Honda Pilot LX is at least 23,900. You
suspect this claim is incorrect and find that a
random sample of 14 similar vehicles has a mean
price of 23,000 and a standard deviation of
1113. Is there enough evidence to reject the
dealers claim at a 0.05? Assume the population
is normally distributed. (Adapted from Kelley
Blue Book)
70Solution Testing µ with a Small Sample
- H0
- Ha
- a
- df
- Rejection Region
0.05
Reject H0
14 1 13
At the 0.05 level of significance, there is
enough evidence to reject the claim that the mean
price of a 2005 Honda Pilot LX is at least 23,900
-1.771
-3.026
71Example Testing µ with a Small Sample
- An industrial company claims that the mean pH
level of the water in a nearby river is 6.8. You
randomly select 19 water samples and measure the
pH of each. The sample mean and standard
deviation are 6.7 and 0.24, respectively. Is
there enough evidence to reject the companys
claim at a 0.05? Assume the population is
normally distributed.
72Solution Testing µ with a Small Sample
- H0
- Ha
- a
- df
- Rejection Region
0.05
Fail to reject H0
19 1 18
At the 0.05 level of significance, there is not
enough evidence to reject the claim that the mean
pH is 6.8.
-2.101
2.101
-1.816
73Example Using P-values with t-Tests
- The American Automobile Association claims that
the mean daily meal cost for a family of four
traveling on vacation in Florida is 118. A
random sample of 11 such families has a mean
daily meal cost of 128 with a standard deviation
of 20. Is there enough evidence to reject the
claim at a 0.10? Assume the population is
normally distributed. (Adapted from American
Automobile Association)
74Solution Using P-values with t-Tests
TI-83/84set up
Calculate
Draw
0.1664 gt 0.10
Fail to reject H0. At the 0.10 level of
significance, there is not enough evidence to
reject the claim that the mean daily meal cost
for a family of four traveling on vacation in
Florida is 118.
75Section 7.3 Summary
- Found critical values in a t-distribution
- Used the t-test to test a mean µ
- Used technology to find P-values and used them
with a t-test to test a mean µ
76Section 7.4
- Hypothesis Testing for Proportions
77Section 7.4 Objectives
- Use the z-test to test a population proportion p
78z-Test for a Population Proportion
- z-Test for a Population Proportion
- A statistical test for a population proportion.
- Can be used when a binomial distribution is given
such that np ? 5 and nq ? 5. - The test statistic is the sample proportion .
- The standardized test statistic is z.
79Using a z-Test for a Proportion p
Verify that np 5 and nq 5
In Words In Symbols
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - Specify the level of significance.
- Sketch the sampling distribution.
- Determine any critical value(s).
State H0 and Ha.
Identify ?.
Use Table 5 in Appendix B.
80Using a z-Test for a Proportion p
In Words In Symbols
- Determine any rejection region(s).
- Find the standardized test statistic.
- Make a decision to reject or fail to reject the
null hypothesis. - Interpret the decision in the context of the
original claim.
If z is in the rejection region, reject H0.
Otherwise, fail to reject H0.
81Example Hypothesis Test for Proportions
- Zogby International claims that 45 of people in
the United States support making cigarettes
illegal within the next 5 to 10 years. You decide
to test this claim and ask a random sample of 200
people in the United States whether they support
making cigarettes illegal within the next 5 to 10
years. Of the 200 people, 49 support this law.
At a 0.05 is there enough evidence to reject
the claim?
- Solution
- Verify that np 5 and nq 5.
np 200(0.45) 90 and nq 200(0.55) 110
82Solution Hypothesis Test for Proportions
0.05
Fail to reject H0
At the 5 level of significance, there is not
enough evidence to reject the claim that 45 of
people in the U.S. support making cigarettes
illegal within the next 5 to 10 years.
-1.96
1.96
1.14
83Example Hypothesis Test for Proportions
- The Pew Research Center claims that more than 55
of U.S. adults regularly watch their local
television news. You decide to test this claim
and ask a random sample of 425 adults in the
United States whether they regularly watch their
local television news. Of the 425 adults, 255
respond yes. At a 0.05 is there enough evidence
to support the claim?
- Solution
- Verify that np 5 and nq 5.
np 425(0.55) 234 and nq 425 (0.45) 191
84Solution Hypothesis Test for Proportions
0.05
Reject H0
At the 5 level of significance, there is enough
evidence to support the claim that more than 55
of U.S. adults regularly watch their local
television news.
1.645
2.07
85Section 7.4 Summary
- Used the z-test to test a population proportion p
86Section 7.5
- Hypothesis Testing for Variance and Standard
Deviation
87Section 7.5 Objectives
- Find critical values for a ?2-test
- Use the ?2-test to test a variance or a standard
deviation
88Finding Critical Values for the ?2-Test
- Specify the level of significance ?.
- Determine the degrees of freedom d.f. n 1.
- The critical values for the ?2-distribution are
found in Table 6 of Appendix B. To find the
critical value(s) for a - right-tailed test, use the value that corresponds
to d.f. and ?. - left-tailed test, use the value that corresponds
to d.f. and 1 ?. - two-tailed test, use the values that corresponds
to d.f. and ½? and d.f. and 1 ½?.
89Finding Critical Values for the ?2-Test
Right-tailed
Left-tailed
Two-tailed
90Example Finding Critical Values for ?2
- Find the critical ?2-value for a left-tailed test
whenn 11 and ? 0.01.
- Solution
- Degrees of freedom n 1 11 1 10 d.f.
- The area to the right of the critical value is 1
? 1 0.01 0.99.
From Table 6, the critical value is
.
91Example Finding Critical Values for ?2
- Find the critical ?2-value for a two-tailed test
when n 13 and ? 0.01.
- Solution
- Degrees of freedom n 1 13 1 12 d.f.
- The areas to the right of the critical values are
From Table 6, the critical values are
and
92The Chi-Square Test
- ?2-Test for a Variance or Standard Deviation
- A statistical test for a population variance or
standard deviation. - Can be used when the population is normal.
- The test statistic is s2.
- The standardized test statistic
- follows a chi-square distribution with degrees
of freedom d.f. n 1.
93Using the ?2-Test for a Variance or Standard
Deviation
In Words In Symbols
- State the claim mathematically and verbally.
Identify the null and alternative hypotheses. - Specify the level of significance.
- Determine the degrees of freedom and sketch the
sampling distribution. - Determine any critical value(s).
State H0 and Ha.
Identify ?.
d.f. n 1
Use Table 6 in Appendix B.
94Using the ?2-Test for a Variance or Standard
Deviation
In Words In Symbols
- Determine any rejection region(s).
- Find the standardized test statistic.
- Make a decision to reject or fail to reject the
null hypothesis. - Interpret the decision in the context of the
original claim.
If ?2 is in the rejection region, reject H0.
Otherwise, fail to reject H0.
95Example Hypothesis Test for the Population
Variance
- A dairy processing company claims that the
variance of the amount of fat in the whole milk
processed by the company is no more than 0.25.
You suspect this is wrong and find that a random
sample of 41 milk containers has a variance of
0.27. At a 0.05, is there enough evidence to
reject the companys claim? Assume the population
is normally distributed.
96Solution Hypothesis Test for the Population
Variance
- H0
- Ha
- a
- df
- Rejection Region
0.05
41 1 40
Fail to Reject H0
At the 5 level of significance, there is not
enough evidence to reject the companys claim
that the variance of the amount of fat in the
whole milk is no more than 0.25.
55.758
43.2
97Example Hypothesis Test for the Standard
Deviation
- A restaurant claims that the standard deviation
in the length of serving times is less than 2.9
minutes. A random sample of 23 serving times has
a standard deviation of 2.1 minutes. At a
0.10, is there enough evidence to support the
restaurants claim? Assume the population is
normally distributed.
98Solution Hypothesis Test for the Standard
Deviation
- H0
- Ha
- a
- df
- Rejection Region
0.10
23 1 22
Reject H0
At the 10 level of significance, there is enough
evidence to support the claim that the standard
deviation for the length of serving times is less
than 2.9 minutes.
14.042
11.536
99Example Hypothesis Test for the Population
Variance
- A sporting goods manufacturer claims that the
variance of the strength in a certain fishing
line is 15.9. A random sample of 15 fishing line
spools has a variance of 21.8. At a 0.05, is
there enough evidence to reject the
manufacturers claim? Assume the population is
normally distributed.
100Solution Hypothesis Test for the Population
Variance
- H0
- Ha
- a
- df
- Rejection Region
0.05
15 1 14
Fail to Reject H0
At the 5 level of significance, there is not
enough evidence to reject the claim that the
variance in the strength of the fishing line is
15.9.
5.629
26.119
19.194
101Section 7.5 Summary
- Found critical values for a ?2-test
- Used the ?2-test to test a variance or a standard
deviation