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KNOWLEDGE-BASED ARTIFICIAL NEURAL NETWORKS

delete1994-10-01
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PRE
AI
T
TOWELL, GG
S
SHAVLIK, JW
DOI:10.1016/0004-3702(94)90105-8delete
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Abstract

Abstract

En 中文
Hybrid learning methods use theoretical knowledge of a domain and a set of classified examples to develop a method for accurately classifying examples not seen during training. The challenge of hybrid learning systems is to use the information provided by one source of information to offset information missing from the other source. By so doing, a hybrid learning system should learn more effectively than systems that use only one of the information sources. KBANN (Knowledge-Based Artificial Neural Networks) is a hybrid learning system built on top of connectionist learning techniques. It maps problem-specific ''domain theories'', represented in propositional logic, into neural networks and then refines this reformulated knowledge using backpropagation. KBANN is evaluated by extensive empirical tests on two problems from molecular biology. Among other results, these tests show that the networks created by KBANN generalize better than a wide variety of learning systems, as well as several techniques proposed by biologists.
Keywords:
MACHINE LEARNING
CONNECTIONISM
EXPLANATION-BASED LEARNING
HYBRID ALGORITHMS
THEORY REFINEMENT
COMPUTATIONAL BIOLOGY
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Artificial Intelligence Review cover
Artificial Intelligence Review
IF:
13.9
Papers:
6.1K
Citations:
1.9W

Organization

No organization information available
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