From Statistical Physics to Statistical Inference and Back
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Author
Contributions
- Nadal, Jean-Pierre - Contributor
Publication
1994 - Springer Netherlands, Dordrecht, Netherlands
Language
English
Word Count
91,000 words, Guess
Page Count
364 pages
Physical Format
[electronic resource] /
Identifiers
- Open LibraryOL27040050M
- ISBN-139789401110686
- ISBN-109401110689
- OCLC Control Number840308787
- OCLC Control Numberfromstatisticalp00toul
Classifications
- LCCQC310.15-319
Alternate Titles
- Proceedings of the NATO Advanced Study Institute, Cargèse (Corsica), France, August 31--September 12, 1992
Description
Physicists, when modelling physical systems with a large number of degrees of freedom, and statisticians, when performing data analysis, have developed their own concepts and methods for making the 'best' inference. But are these methods equivalent, or not? What is the state of the art in making inferences? The physicists want answers. More: neural computation demands a clearer understanding of how neural systems make inferences; the theory of chaotic nonlinear systems as applied to time series analysis could profit from the experience already booked by the statisticians; and finally, there is a long-standing conjecture that some of the puzzles of quantum mechanics are due to our incomplete understanding of how we make inferences. Matter enough to stimulate the writing of such a book as the present one. <br/> But other considerations also arise, such as the maximum entropy method and Bayesian inference, information theory and the minimum description length. Finally, it is pointed out that an understanding of human inference may require input from psychologists. This lively debate, which is of acute current interest, is well summarized in the present work. <br/>
Subjects
Series Statement
- NATO ASI Series, Series C: Mathematical and Physical Sciences, 1389-2185 -- 428
Links
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