Inference in Hidden Markov Models

Author:   Olivier Cappé ,  Eric Moulines ,  Tobias Ryden
Publisher:   Springer-Verlag New York Inc.
Edition:   Softcover reprint of hardcover 1st ed. 2005
ISBN:  

9781441923196


Pages:   653
Publication Date:   01 December 2010
Format:   Paperback
Availability:   In Print   Availability explained
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Inference in Hidden Markov Models


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Author:   Olivier Cappé ,  Eric Moulines ,  Tobias Ryden
Publisher:   Springer-Verlag New York Inc.
Imprint:   Springer-Verlag New York Inc.
Edition:   Softcover reprint of hardcover 1st ed. 2005
Dimensions:   Width: 15.50cm , Height: 3.40cm , Length: 23.50cm
Weight:   1.015kg
ISBN:  

9781441923196


ISBN 10:   1441923195
Pages:   653
Publication Date:   01 December 2010
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Paperback
Publisher's Status:   Active
Availability:   In Print   Availability explained
This item will be ordered in for you from one of our suppliers. Upon receipt, we will promptly dispatch it out to you. For in store availability, please contact us.

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From the reviews: By providing an overall survey of results obtained so far in a very readable manner, and also presenting some new ideas, this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making inference HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer's opinion this book will shortly become a reference work in its field. MathSciNet This monograph is a valuable resource. It provides a good literature review, an excellent account of the state of the art research on the necessary theory and algorithms, and ample illustrations of numerous applications of HMM. It goes much beyond the earlier resources on HMM...I anticipate this work to serve well many Technometrics readers in the coming years. Haikady N. Nagaraja for Technometrics, November 2006 This monograph is an attempt to present a reasonably complete up-to-date picture of the field of Hidden Markov Models (HMM) that is self-contained from a theoretical point of view and self sufficient from a methodological point of view. ... The book is written for academic researchers in the field of HMMs, and also for practitioners and researchers from other fields. ... all the theory is illustrated with relevant running examples. This voluminous book has indeed the potential to become a standard text on HMM. (R. Schlittgen, Zentralblatt MATH, Vol. 1080, 2006) Providing an overall survey of results obtained so far in a very readable manner ... this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making interference on HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer,s opinion this book will shortly become a reference work in its field. (M. Iosifescu, Mathematical Reviews, Issue 2006 e) The authors describe Hidden Markov Models (HMMs) as 'one of the most successful statistical modelling ideas ... in the last forty years., The book considers both finite and infinite sample spaces. ... Illustrative examples ... recur throughout the book. ... This fascinating book offers new insights into the theory and application of HMMs, and in addition it is a useful source of reference for the wide range of topics considered. (B. J. T. Morgan, Short Book Reviews, Vol. 26 (2), 2006) In Inference in Hidden Markov Models, Cappe et al. present the current state of the art in HMMs in an emminently readable, thorough, and useful way. This is a very well-written book ... . The writing is clear and concise. ... the book will appeal to academic researchers in the field of HMMs, in particular PhD students working on related topics, by summing up the results obtained so far and presenting some new ideas ... . (Robert Shearer, Interfaces, Vol. 37 (2), 2007)


From the reviews: By providing an overall survey of results obtained so far in a very readable manner, and also presenting some new ideas, this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making inference HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer's opinion this book will shortly become a reference work in its field. MathSciNet This monograph is a valuable resource. It provides a good literature review, an excellent account of the state of the art research on the necessary theory and algorithms, and ample illustrations of numerous applications of HMM. It goes much beyond the earlier resources on HMM...I anticipate this work to serve well many Technometrics readers in the coming years. Haikady N. Nagaraja for Technometrics, November 2006 This monograph is an attempt to present a reasonably complete up-to-date picture of the field of Hidden Markov Models (HMM) that is self-contained from a theoretical point of view and self sufficient from a methodological point of view. ! The book is written for academic researchers in the field of HMMs, and also for practitioners and researchers from other fields. ! all the theory is illustrated with relevant running examples. This voluminous book has indeed the potential to become a standard text on HMM. (R. Schlittgen, Zentralblatt MATH, Vol. 1080, 2006) Providing an overall survey of results obtained so far in a very readable manner ! this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making interference on HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer's opinion this book will shortly become a reference work in its field. (M. Iosifescu, Mathematical Reviews, Issue 2006 e) The authors describe Hidden Markov Models (HMMs) as 'one of the most successful statistical modelling ideas ! in the last forty years.' The book considers both finite and infinite sample spaces. ! Illustrative examples ! recur throughout the book. ! This fascinating book offers new insights into the theory and application of HMMs, and in addition it is a useful source of reference for the wide range of topics considered. (B. J. T. Morgan, Short Book Reviews, Vol. 26 (2), 2006) In Inference in Hidden Markov Models, Cappe et al. present the current state of the art in HMMs in an emminently readable, thorough, and useful way. This is a very well-written book ! . The writing is clear and concise. ! the book will appeal to academic researchers in the field of HMMs, in particular PhD students working on related topics, by summing up the results obtained so far and presenting some new ideas ! . (Robert Shearer, Interfaces, Vol. 37 (2), 2007)


From the reviews: By providing an overall survey of results obtained so far in a very readable manner, and also presenting some new ideas, this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making inference HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer's opinion this book will shortly become a reference work in its field. MathSciNet This monograph is a valuable resource. It provides a good literature review, an excellent account of the state of the art research on the necessary theory and algorithms, and ample illustrations of numerous applications of HMM. It goes much beyond the earlier resources on HMM...I anticipate this work to serve well many Technometrics readers in the coming years. Haikady N. Nagaraja for Technometrics, November 2006 This monograph is an attempt to present a reasonably complete up-to-date picture of the field of Hidden Markov Models (HMM) that is self-contained from a theoretical point of view and self sufficient from a methodological point of view. ... The book is written for academic researchers in the field of HMMs, and also for practitioners and researchers from other fields. ... all the theory is illustrated with relevant running examples. This voluminous book has indeed the potential to become a standard text on HMM. (R. Schlittgen, Zentralblatt MATH, Vol. 1080, 2006) Providing an overall survey of results obtained so far in a very readable manner ... this well-written book will appeal to academic researchers in the field of HMMs, with PhD students working on related topics included. It will also appeal to practitioners and researchers from other fields by guiding them through the computational steps needed for making interference on HMMs and/or by providing them with the relevant underlying statistical theory. In the reviewer's opinion this book will shortly become a reference work in its field. (M. Iosifescu, Mathematical Reviews, Issue 2006 e) The authors describe Hidden Markov Models (HMMs) as `one of the most successful statistical modelling ideas ... in the last forty years.' The book considers both finite and infinite sample spaces. ... Illustrative examples ... recur throughout the book. ... This fascinating book offers new insights into the theory and application of HMMs, and in addition it is a useful source of reference for the wide range of topics considered. (B. J. T. Morgan, Short Book Reviews, Vol. 26 (2), 2006) In Inference in Hidden Markov Models, Cappe et al. present the current state of the art in HMMs in an emminently readable, thorough, and useful way. This is a very well-written book ... . The writing is clear and concise. ... the book will appeal to academic researchers in the field of HMMs, in particular PhD students working on related topics, by summing up the results obtained so far and presenting some new ideas ... . (Robert Shearer, Interfaces, Vol. 37 (2), 2007)


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