The book presents an axiomatic approach to the problems of prediction, classification, and statistical learning. Using methodologies from axiomatic decision theory, and, in particular, the authors' case-based decision theory, the present studies attempt to ask what inductive conclusions can be derived from existing databases. It is shown that simple consistency rules lead to similarity-weighted aggregation, akin to kernel-based methods. It is suggested that the similarity function be estimated from the data. The incorporation of rule-based reasoning is discussed.
| ISBN-13: | 9789814366175 |
| ISBN-10: | 981436617X |
| Publisher: | World Scientific |
| Publication date: | 2012 |
| Edition description: | 1 |
| Pages: | 309 |
| Product dimensions: | Height: 9 Inches, Length: 6 Inches, Weight: 1.35 Pounds, Width: 0.81 Inches |
| Author: | Itzhak Gilboa, David Schmeidler |
| Language: | en |
| Binding: | Hardcover |
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