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Heterogeneity, or mixtures, are ubiquitous in genetics. Even for
data as simple as mono-genic diseases, populations are a mixture of
affected and unaffected individuals. Still, most statistical
genetic association analyses, designed to map genes for diseases
and other genetic traits, ignore this phenomenon. In this book, we
document methods that incorporate heterogeneity into the design and
analysis of genetic and genomic association data. Among the key
qualities of our developed statistics is that they include mixture
parameters as part of the statistic, a unique component for tests
of association. A critical feature of this work is the inclusion of
at least one heterogeneity parameter when performing statistical
power and sample size calculations for tests of genetic
association. We anticipate that this book will be useful to
researchers who want to estimate heterogeneity in their data,
develop or apply genetic association statistics where heterogeneity
exists, and accurately evaluate statistical power and sample size
for genetic association through the application of robust
experimental design.
Heterogeneity, or mixtures, are ubiquitous in genetics. Even for
data as simple as mono-genic diseases, populations are a mixture of
affected and unaffected individuals. Still, most statistical
genetic association analyses, designed to map genes for diseases
and other genetic traits, ignore this phenomenon. In this book, we
document methods that incorporate heterogeneity into the design and
analysis of genetic and genomic association data. Among the key
qualities of our developed statistics is that they include mixture
parameters as part of the statistic, a unique component for tests
of association. A critical feature of this work is the inclusion of
at least one heterogeneity parameter when performing statistical
power and sample size calculations for tests of genetic
association. We anticipate that this book will be useful to
researchers who want to estimate heterogeneity in their data,
develop or apply genetic association statistics where heterogeneity
exists, and accurately evaluate statistical power and sample size
for genetic association through the application of robust
experimental design.
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