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Learning term-relationships for ontology construction: creating business ontologies for event explanation

Published: 02 October 2005 Publication History

Abstract

Term-Relationship plays major role in several areas of research including document relevance, domain ontology construction or metadata extraction. As part of our work in finding explanation for market events (such as sudden or significant stock price change for a company), we use business ontologies to facilitate the relevance ranking of documents. We use the ontologies even further to rank individual sentences in a news article so that irrelevant events (in the form of sentences) in a relevant article will not get undue importance. This two-step ranking helps us in extracting important sentences which can be labelled as "responsible" or "explanatory" sentences for a significant stock price change. In this paper we show the performance evaluation of our relevance model using ontologies. We also show a few examples of sentences which can be thought of as providing explanation for some recent price changes.

References

[1]
S. Debnath and C. L. Giles. A learning based model for headline extraction of news articles to find explanatory sentences for events. In proceedings of K-CAP, 2005.
[2]
S. Debnath, T. Mullen, A. Upneja, and C. L. Giles. Knowledge discovery in web-directories: Finding term-relations to build a business ontology. In upcoming proceedings of EC-WEB, 2005.

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  1. Learning term-relationships for ontology construction: creating business ontologies for event explanation

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    cover image ACM Conferences
    K-CAP '05: Proceedings of the 3rd international conference on Knowledge capture
    October 2005
    234 pages
    ISBN:1595931635
    DOI:10.1145/1088622
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    New York, NY, United States

    Publication History

    Published: 02 October 2005

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    Author Tags

    1. explanatory sentence
    2. ontology
    3. term-relationship

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