Stochastic Modeling of Scientific Data (Chapman & Hall/CRC Texts in Statistical Science)
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- Synopsis
- Stochastic Modeling of Scientific Data combines stochastic modeling and statistical inference in a variety of standard and less common models, such as point processes, Markov random fields and hidden Markov models in a clear, thoughtful and succinct manner. The distinguishing feature of this work is that, in addition to probability theory, it contains statistical aspects of model fitting and a variety of data sets that are either analyzed in the text or used as exercises. Markov chain Monte Carlo methods are introduced for evaluating likelihoods in complicated models and the forward backward algorithm for analyzing hidden Markov models is presented. The strength of this text lies in the use of informal language that makes the topic more accessible to non-mathematicians. The combinations of hard science topics with stochastic processes and their statistical inference puts it in a new category of probability textbooks. The numerous examples and exercises are drawn from astronomy, geology, genetics, hydrology, neurophysiology and physics.
- Copyright:
- 1995
Book Details
- Book Quality:
- Publisher Quality
- Book Size:
- 384 Pages
- ISBN-13:
- 9781351413657
- Related ISBNs:
- 9780203738252, 9780367449001, 9780412992810
- Publisher:
- CRC Press
- Date of Addition:
- 09/24/23
- Copyrighted By:
- Taylor and Francis Group LLC
- Adult content:
- No
- Language:
- English
- Has Image Descriptions:
- No
- Categories:
- Nonfiction, Mathematics and Statistics
- Submitted By:
- Bookshare Staff
- Usage Restrictions:
- This is a copyrighted book.