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Published byManuella Frade Bayer Modified over 6 years ago
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Chapter 15 Strategies When Population Distributions are Not Normal:
Data Transformations and Rank-Order Tests
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Assumptions in the Standard Hypothesis-Testing Procedures
Populations follow a normal curve Populations have equal variances Ceiling and floor effects
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Data Transformations Data transformation Square-root transformation
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Data Transformations Legitimacy of data transformations
Kinds of data transformations Square root transformation Log transformation Inverse transformation Arcsine transformation
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Rank-Order Tests Rank-order transformation Rank-order tests
Nonparametric tests Parametric tests
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Rank-Order Tests Basic logic The null hypothesis
Normal curve approximations Using parametric tests with rank-transformed data
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Comparison of Methods Advantages and disadvantages
Relative risk of Type I and Type II errors
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Controversies and Recent Development
Computer-intensive methods Randomization tests Proposed alternative to parametric and nonparametric methods Widely applicable Unfamiliar to researchers
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Reporting in Research Articles
Data transformations Described just prior to analyses using them Rank-order methods Described much like any other kind of hypothesis test
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