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Algorithm of designing compound recognition system on the basis of combining classifiers with simultaneous splitting feature space into competence areas

机译:基于分类器并同时将特征空间划分为胜任力区域的复合识别系统设计算法

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摘要

The paper presents the novel adaptive splitting and selection algorithm (AdaSS) used for learning compound pattern recognition system. Splitting a feature space into its constituents and selection of the best area classifier from the pool of available recognizers for each region are key processes of the proposed model. Both take place simultaneously as part of a compound optimization process aimed at maximizing system performance. Evolutionary algorithms are used to find out the optimal solution. The results of experiments for algorithm evaluation purposes prove the quality of the proposed approach.
机译:本文提出了一种用于学习复合模式识别系统的新型自适应分割与选择算法(AdaSS)。将特征空间划分为其组成部分,并从每个区域的可用识别器池中选择最佳区域分类器,是所提出模型的关键过程。两者作为旨在使系统性能最大化的复合优化过程的一部分同时进行。进化算法用于找出最佳解决方案。用于算法评估目的的实验结果证明了该方法的质量。

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