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      NeuroRule: A Connectionist Approach to Data Mining

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          Abstract

          Classification, which involves finding rules that partition a given data set into disjoint groups, is one class of data mining problems. Approaches proposed so far for mining classification rules for large databases are mainly decision tree based symbolic learning methods. The connectionist approach based on neural networks has been thought not well suited for data mining. One of the major reasons cited is that knowledge generated by neural networks is not explicitly represented in the form of rules suitable for verification or interpretation by humans. This paper examines this issue. With our newly developed algorithms, rules which are similar to, or more concise than those generated by the symbolic methods can be extracted from the neural networks. The data mining process using neural networks with the emphasis on rule extraction is described. Experimental results and comparison with previously published works are presented.

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          First- and Second-Order Methods for Learning: Between Steepest Descent and Newton's Method

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            Extracting refined rules from knowledge-based neural networks

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              Dynamic Node Creation in Backpropagation Networks

              TIMUR ASH (2007)
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                Author and article information

                Journal
                2017-01-05
                Article
                1701.01358
                fb497661-9c8d-43fe-b9a4-c52d32de1509

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                VLDB1995
                cs.AI

                Artificial intelligence
                Artificial intelligence

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