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The hybrid application of an inductive learning method and a neural network for intelligent information retrieval

Authors
Cortez, Edwin M.Park, Sang C.Kim, Seonghee
Issue Date
Nov-1995
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Citation
INFORMATION PROCESSING & MANAGEMENT, v.31, no.6, pp 789 - 813
Pages
25
Journal Title
INFORMATION PROCESSING & MANAGEMENT
Volume
31
Number
6
Start Page
789
End Page
813
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/55007
DOI
10.1016/0306-4573(95)00015-9
ISSN
0306-4573
1873-5371
Abstract
Traditional information retrieval systems based on Boolean logic suffer from two inherent problems: (1) inaccurate or incomplete query representation, and (2) inconsistent indexing; While many researchers have demonstrated that neural networks can solve the incomplete query problems for information retrieval, the inconsistent indexing problem still remains unsolved. In this paper, we present a hybrid methodology of integrating an inductive learning technique with a neural network (connectionist model) in order to solve both inconsistent indexing and incomplete query problems. Since an inductive learning technique has the ability to identify the most significant document index terms with various levels of relationship to their semantic significance, it provides a possible solution to the problem of inconsistent indexing. This paper reports the first phase of research that demonstrates how a neural network augmented by an inductive learning technique results in effective information retrieval performance in the areas that demand flexible inferencing and reasoning when incomplete queries and inconsistent indexing problems are present.
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사회과학대학 (문헌정보학과)
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