Classification and modeling with linguistic information granules
advanced approaches advanced approaches to linguistic data mining
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Author
Contributions
- Nakashima, Tomoharu. - Contributor
- Nii, Manabu. - Contributor
Publication
2005 - Springer, New York, New York (State)
Language
English
Word Count
76,750 words, Guess
Page Count
307 pages
Identifiers
- Open LibraryOL3316602M
- ISBN-103540207678
- OCLC Control Number59003662
- OCLC Control Numberclassificationmo00ishi
- Library of Congress Control Number2004114623
and 2 more
- Goodreads2653932
- LibraryThing6352842
Classifications
- LCCP203 .I74 2005
Description
Many approaches have already been proposed for classification and modeling in the literature. These approaches are usually based on mathematical mod els. Computer systems can easily handle mathematical models even when they are complicated and nonlinear (e.g., neural networks). On the other hand, it is not always easy for human users to intuitively understand mathe matical models even when they are simple and linear. This is because human information processing is based mainly on linguistic knowledge while com puter systems are designed to handle symbolic and numerical information. A large part of our daily communication is based on words. We learn from various media such as books, newspapers, magazines, TV, and the Inter net through words. We also communicate with others through words. While words play a central role in human information processing, linguistic models are not often used in the fields of classification and modeling. If there is no goal other than the maximization of accuracy in classification and model ing, mathematical models may always be preferred to linguistic models. On the other hand, linguistic models may be chosen if emphasis is placed on interpretability.
Subjects
Topics
Series Statement
- Advanced information processing
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