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This book is an elementary and practical introduction to
probability theory. It differs from other introductory texts in two
important respects. First, the per sonal (or subjective) view of
probability is adopted throughout. Second, emphasis is placed on
how values are assigned to probabilities in practice, i.e. the
measurement of probabilities. The personal approach to probability
is in many ways more natural than other current formulations, and
can also provide a broader view of the subject. It thus has a
unifying effect. It has also assumed great importance recently
because of the growth of Bayesian Statistics. Personal probability
is essential for modern Bayesian methods, and it can be difficult
for students who have learnt a different view of probability to
adapt to Bayesian thinking. This book has been produced in response
to that difficulty, to present a thorough introduction to
probability from scratch, and entirely in the personal framework."
Bayesian analysis has developed rapidly in applications in the last
two decades and research in Bayesian methods remains dynamic and
fast-growing. Dramatic advances in modelling concepts and
computational technologies now enable routine application of
Bayesian analysis using increasingly realistic stochastic models,
and this drives the adoption of Bayesian approaches in many areas
of science, technology, commerce, and industry.
This Handbook explores contemporary Bayesian analysis across a
variety of application areas. Chapters written by leading exponents
of applied Bayesian analysis showcase the scientific ease and
natural application of Bayesian modelling, and present solutions to
real, engaging, societally important and demanding problems. The
chapters are grouped into five general areas: Biomedical &
Health Sciences; Industry, Economics & Finance; Environment
& Ecology; Policy, Political & Social Sciences; and Natural
& Engineering Sciences, and Appendix material in each touches
on key concepts, models, and techniques of the chapter that are
also of broader pedagogic and applied interest.
Bayesian analysis has developed rapidly in applications in the last
two decades and research in Bayesian methods remains dynamic and
fast-growing. Dramatic advances in modelling concepts and
computational technologies now enable routine application of
Bayesian analysis using increasingly realistic stochastic models,
and this drives the adoption of Bayesian approaches in many areas
of science, technology, commerce, and industry. This Handbook
explores contemporary Bayesian analysis across a variety of
application areas. Chapters written by leading exponents of applied
Bayesian analysis showcase the scientific ease and natural
application of Bayesian modelling, and present solutions to real,
engaging, societally important and demanding problems. The chapters
are grouped into five general areas: Biomedical & Health
Sciences; Industry, Economics & Finance; Environment &
Ecology; Policy, Political & Social Sciences; and Natural &
Engineering Sciences, and Appendix material in each touches on key
concepts, models, and techniques of the chapter that are also of
broader pedagogic and applied interest.
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