Deck 13: Testing for Significance in Multiple Groups: the Analysis of Variance Statistic

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Question
An independent variable with 6 values (groups)can be used with a the t-test,but you would have to make several ?t-tests.Of the various problems below,which is the one reflected by making multiple t-tests?

A)you would have an experiment-wise error rate problem
B)the groups would present a normal-distribution problem
C)there is no way to choose correctly which t-test you should use
D)there is no problem with making multiple t-tests as long as you meet other assumptions
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Question
The analysis of variance is part of the nonlinear specific model,a family of statistical techniques.
Question
The analysis of variance is designed for which level of measurement?

A)nominal
B)ordinal
C)interval
D)ratio
Question
A reasonable alternative to the ANOVA statistic is the

A)Chi-square test
B)Kruskal-Wallis H test
C)Mann-Whitney U test
D)Fisher's Exact test
Question
Multiple comparison tests compare only the highest and lowest group values.All others have to be estimated using.
Question
If data are not normally distributed,which of the two inferential tests below should not be used?

A)Chi-square and t-test
B)Chi-square and analysis of variance
C)T-test and analysis of variance
D)All of the tests can be used,a normal distribution is not required for any of them.
Question
The concept of "error" is expressed in the ANOVA by

A)the total mean sums
B)the between sums of squares
C)the within sums of squares
D)the between mean squares
Question
The ANOVA cannot be used for a 2-group comparison.
Question
If you are doing 20 two-at-a-time t-tests,you would expect 1 test result to be the result of error.
Question
If an analysis of variance is significant,you should use a multiple comparison test to locate groups with significantly different comparisons.
Question
A determination of which groups,if any,are significantly different from each other cannot be done with the analysis of variance test.
Question
The best approach,of those listed below,to determining differences between individual groups is to use

A)the analysis of variance test
B)the Bonferroni test
C)the t-test
D)the Mann-Whitney U test
Question
One of the assumptions of the Analysis of Variance test is homogeneity of variances.If the data violate this assumption they are referred to as:

A)nonhomogenic
B)heteroscedastic
C)homoscedastic
D)lacking variation
Question
ANOVA can accommodate multiple dependent variables.
Question
How many groups can be used in the analysis of variance?

A)4
B)as many as you want
C)only 2
D)between 3 and 15
Question
If there are multiple violations of the assumptions of ANOVA,it doesn't really make a difference because ANOVA is very robust to these violations.
Question
If the group variances are unequal,you should use the unequal variance ANOVA test.
Question
Which reason below best answers why a two-tailed hypothesis should be used with an analysis of variance.

A)the probability levels for ANOVA do not easily divide by 2 as in other tests
B)the dependent variable in an ANOVA is nominal level
C)the normal distribution assumption is not used,so a one-tailed curve does not exist
D)it is too difficult to make predictions for multiple group comparisons in a single statement
Question
Only a one-tailed hypothesis should be used with the analysis of variance statistic.
Question
The effect of an independent variable in the ANOVA is found

A)in the degrees of freedom used to create the F-ratio value
B)in the product of the between mean squares divided by the within mean squares
C)in the product of the between sums of squares divided by the within sums of squares
D)you can't find this affect in ANOVA,you have to use a multiple comparison test
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Deck 13: Testing for Significance in Multiple Groups: the Analysis of Variance Statistic
1
An independent variable with 6 values (groups)can be used with a the t-test,but you would have to make several ?t-tests.Of the various problems below,which is the one reflected by making multiple t-tests?

A)you would have an experiment-wise error rate problem
B)the groups would present a normal-distribution problem
C)there is no way to choose correctly which t-test you should use
D)there is no problem with making multiple t-tests as long as you meet other assumptions
A
2
The analysis of variance is part of the nonlinear specific model,a family of statistical techniques.
False
3
The analysis of variance is designed for which level of measurement?

A)nominal
B)ordinal
C)interval
D)ratio
C
4
A reasonable alternative to the ANOVA statistic is the

A)Chi-square test
B)Kruskal-Wallis H test
C)Mann-Whitney U test
D)Fisher's Exact test
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5
Multiple comparison tests compare only the highest and lowest group values.All others have to be estimated using.
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Unlock for access to all 20 flashcards in this deck.
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6
If data are not normally distributed,which of the two inferential tests below should not be used?

A)Chi-square and t-test
B)Chi-square and analysis of variance
C)T-test and analysis of variance
D)All of the tests can be used,a normal distribution is not required for any of them.
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k this deck
7
The concept of "error" is expressed in the ANOVA by

A)the total mean sums
B)the between sums of squares
C)the within sums of squares
D)the between mean squares
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8
The ANOVA cannot be used for a 2-group comparison.
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9
If you are doing 20 two-at-a-time t-tests,you would expect 1 test result to be the result of error.
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10
If an analysis of variance is significant,you should use a multiple comparison test to locate groups with significantly different comparisons.
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11
A determination of which groups,if any,are significantly different from each other cannot be done with the analysis of variance test.
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12
The best approach,of those listed below,to determining differences between individual groups is to use

A)the analysis of variance test
B)the Bonferroni test
C)the t-test
D)the Mann-Whitney U test
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Unlock for access to all 20 flashcards in this deck.
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13
One of the assumptions of the Analysis of Variance test is homogeneity of variances.If the data violate this assumption they are referred to as:

A)nonhomogenic
B)heteroscedastic
C)homoscedastic
D)lacking variation
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14
ANOVA can accommodate multiple dependent variables.
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15
How many groups can be used in the analysis of variance?

A)4
B)as many as you want
C)only 2
D)between 3 and 15
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16
If there are multiple violations of the assumptions of ANOVA,it doesn't really make a difference because ANOVA is very robust to these violations.
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17
If the group variances are unequal,you should use the unequal variance ANOVA test.
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18
Which reason below best answers why a two-tailed hypothesis should be used with an analysis of variance.

A)the probability levels for ANOVA do not easily divide by 2 as in other tests
B)the dependent variable in an ANOVA is nominal level
C)the normal distribution assumption is not used,so a one-tailed curve does not exist
D)it is too difficult to make predictions for multiple group comparisons in a single statement
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19
Only a one-tailed hypothesis should be used with the analysis of variance statistic.
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20
The effect of an independent variable in the ANOVA is found

A)in the degrees of freedom used to create the F-ratio value
B)in the product of the between mean squares divided by the within mean squares
C)in the product of the between sums of squares divided by the within sums of squares
D)you can't find this affect in ANOVA,you have to use a multiple comparison test
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