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This book explores different statistical quality technologies
including recent advances and applications. Statistical process
control, acceptance sample plans and reliability assessment are
some of the essential statistical techniques in quality
technologies to ensure high quality products and to reduce consumer
and producer risks. Numerous statistical techniques and
methodologies for quality control and improvement have been
developed in recent years to help resolve current product quality
issues in today's fast changing environment. Featuring
contributions from top experts in the field, this book covers three
major topics: statistical process control, acceptance sampling
plans, and reliability testing and designs. The topics covered in
the book are timely and have a high potential impact and influence
to academics, scholars, students and professionals in statistics,
engineering, manufacturing and health.
Bayesian analysis is one of the important tools for statistical
modelling and inference. Bayesian frameworks and methods have been
successfully applied to solve practical problems in reliability and
survival analysis, which have a wide range of real world
applications in medical and biological sciences, social and
economic sciences, and engineering. In the past few decades,
significant developments of Bayesian inference have been made by
many researchers, and advancements in computational technology and
computer performance has laid the groundwork for new opportunities
in Bayesian computation for practitioners. Because these
theoretical and technological developments introduce new questions
and challenges, and increase the complexity of the Bayesian
framework, this book brings together experts engaged in
groundbreaking research on Bayesian inference and computation to
discuss important issues, with emphasis on applications to
reliability and survival analysis. Topics covered are timely and
have the potential to influence the interacting worlds of
biostatistics, engineering, medical sciences, statistics, and more.
The included chapters present current methods, theories, and
applications in the diverse area of biostatistical analysis. The
volume as a whole serves as reference in driving quality global
health research.
Bayesian analysis is one of the important tools for statistical
modelling and inference. Bayesian frameworks and methods have been
successfully applied to solve practical problems in reliability and
survival analysis, which have a wide range of real world
applications in medical and biological sciences, social and
economic sciences, and engineering. In the past few decades,
significant developments of Bayesian inference have been made by
many researchers, and advancements in computational technology and
computer performance has laid the groundwork for new opportunities
in Bayesian computation for practitioners. Because these
theoretical and technological developments introduce new questions
and challenges, and increase the complexity of the Bayesian
framework, this book brings together experts engaged in
groundbreaking research on Bayesian inference and computation to
discuss important issues, with emphasis on applications to
reliability and survival analysis. Topics covered are timely and
have the potential to influence the interacting worlds of
biostatistics, engineering, medical sciences, statistics, and more.
The included chapters present current methods, theories, and
applications in the diverse area of biostatistical analysis. The
volume as a whole serves as reference in driving quality global
health research. Â
This book explores different statistical quality technologies
including recent advances and applications. Statistical process
control, acceptance sample plans and reliability assessment are
some of the essential statistical techniques in quality
technologies to ensure high quality products and to reduce consumer
and producer risks. Numerous statistical techniques and
methodologies for quality control and improvement have been
developed in recent years to help resolve current product quality
issues in today's fast changing environment. Featuring
contributions from top experts in the field, this book covers three
major topics: statistical process control, acceptance sampling
plans, and reliability testing and designs. The topics covered in
the book are timely and have a high potential impact and influence
to academics, scholars, students and professionals in statistics,
engineering, manufacturing and health.
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