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This book shows healthcare professionals how to turn data points
into meaningful knowledge upon which they can take effective
action. Actionable intelligence can take many forms, from informing
health policymakers on effective strategies for the population to
providing direct and predictive insights on patients to healthcare
providers so they can achieve positive outcomes. It can assist
those performing clinical research where relevant statistical
methods are applied to both identify the efficacy of treatments and
improve clinical trial design. It also benefits healthcare data
standards groups through which pertinent data governance policies
are implemented to ensure quality data are obtained, measured, and
evaluated for the benefit of all involved. Although the obvious
constant thread among all of these important healthcare use cases
of actionable intelligence is the data at hand, such data in and of
itself merely represents one element of the full structure of
healthcare data analytics. This book examines the structure for
turning data into actionable knowledge and discusses: The
importance of establishing research questions Data collection
policies and data governance Principle-centered data analytics to
transform data into information Understanding the "why" of
classified causes and effects Narratives and visualizations to
inform all interested parties Actionable Intelligence in Healthcare
is an important examination of how proper healthcare-related
questions should be formulated, how relevant data must be
transformed to associated information, and how the processing of
information relates to knowledge. It indicates to clinicians and
researchers why this relative knowledge is meaningful and how best
to apply such newfound understanding for the betterment of all.
This book shows healthcare professionals how to turn data points
into meaningful knowledge upon which they can take effective
action. Actionable intelligence can take many forms, from informing
health policymakers on effective strategies for the population to
providing direct and predictive insights on patients to healthcare
providers so they can achieve positive outcomes. It can assist
those performing clinical research where relevant statistical
methods are applied to both identify the efficacy of treatments and
improve clinical trial design. It also benefits healthcare data
standards groups through which pertinent data governance policies
are implemented to ensure quality data are obtained, measured, and
evaluated for the benefit of all involved. Although the obvious
constant thread among all of these important healthcare use cases
of actionable intelligence is the data at hand, such data in and of
itself merely represents one element of the full structure of
healthcare data analytics. This book examines the structure for
turning data into actionable knowledge and discusses: The
importance of establishing research questions Data collection
policies and data governance Principle-centered data analytics to
transform data into information Understanding the "why" of
classified causes and effects Narratives and visualizations to
inform all interested parties Actionable Intelligence in Healthcare
is an important examination of how proper healthcare-related
questions should be formulated, how relevant data must be
transformed to associated information, and how the processing of
information relates to knowledge. It indicates to clinicians and
researchers why this relative knowledge is meaningful and how best
to apply such newfound understanding for the betterment of all.
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