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Advancing the development, validation, and use of patient-reported
outcome (PRO) measures, Patient-Reported Outcomes: Measurement,
Implementation and Interpretation helps readers develop and enrich
their understanding of PRO methodology, particularly from a
quantitative perspective. Designed for biopharmaceutical
researchers and others in the health sciences community, it
provides an up-to-date volume on conceptual and analytical issues
of PRO measures. The book discusses key concepts relating to the
measurement, implementation, and interpretation of PRO measures. It
covers both introductory and advanced psychometric and
biostatistical methods for constructing and analyzing PRO measures.
The authors include many relevant real-life applications based on
their extensive first-hand experiences in the pharmaceutical
industry. They implement a wealth of simulated datasets to
illustrate concepts and heighten understanding based on practical
scenarios. For readers interested in conducting statistical
analyses of PRO measures and delving more deeply into the analytic
details, most chapters contain SAS code and output that illustrate
the methodology. Along with providing numerous references, the book
highlights current regulatory guidelines.
Advancing the development, validation, and use of patient-reported
outcome (PRO) measures, Patient-Reported Outcomes: Measurement,
Implementation and Interpretation helps readers develop and enrich
their understanding of PRO methodology, particularly from a
quantitative perspective. Designed for biopharmaceutical
researchers and others in the health sciences community, it
provides an up-to-date volume on conceptual and analytical issues
of PRO measures. The book discusses key concepts relating to the
measurement, implementation, and interpretation of PRO measures. It
covers both introductory and advanced psychometric and
biostatistical methods for constructing and analyzing PRO measures.
The authors include many relevant real-life applications based on
their extensive first-hand experiences in the pharmaceutical
industry. They implement a wealth of simulated datasets to
illustrate concepts and heighten understanding based on practical
scenarios. For readers interested in conducting statistical
analyses of PRO measures and delving more deeply into the analytic
details, most chapters contain SAS code and output that illustrate
the methodology. Along with providing numerous references, the book
highlights current regulatory guidelines.
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