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Improving the Input of Classified Neural Networks Through Feature Construction
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作者 Yang, L. Yu, Z. Huang, L. 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2001年第3期85-89,共5页
A general classification algorithm of neural networks is unable to obtain satisfied results because of the uncertain problems existing among the features in moot classification programs, such as interaction. With new ... A general classification algorithm of neural networks is unable to obtain satisfied results because of the uncertain problems existing among the features in moot classification programs, such as interaction. With new features constructed by optimizing decision trees of examples, the input of neural networks is improved and an optimized classification algorithm based on neural networks is presented. A concept of dispersion of a classification program is also introduced too in this paper. At the end of the paper, an analysis is made with an example. 展开更多
关键词 Feature construction Neural networks DISPERSION Decision trees Hyperplane.
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