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Adaptive combination of adaptive classifiers for handwritten character recognition

机译:自适应分类器的自适应组合,用于手写字符识别

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In this paper we examine the feasibility of combining two distinct layers of on-line adaptation for improving overall handwritten character recognition performance. These two approaches are adaptive classifiers and an adaptive committee used to combine them. On-line adaptive handwritten character classifiers are first discussed and the significant performance enhancements they can provide illustrated. We then examine the benefits from combining classifiers for this task, adaptive and non-adaptive, and present an adaptive committee structure suitable for this doubly adaptive framework. Experiments in combining the two adaptation approaches to form an adaptive committee consisting of adaptive member classifiers are described. The results show that while adaptation of the individual classifiers provides on average the most benefit in comparison to the non-adaptive reference level, the use of an adaptive combination of adaptive classifiers is still capable of enhancing the recognition performance by a significant margin. The usefulness of the proposed doubly adaptive approach is in this paper demonstrated in the domain of on-line handwritten character recognition, but we argue that the proposed methodology could also be applied to other application domains.
机译:在本文中,我们研究了将两个不同的在线适应层结合起来以提高整体手写字符识别性能的可行性。这两种方法是自适应分类器和用于组合它们的自适应委员会。首先讨论了在线自适应手写字符分类器,并说明了它们可以提供的显着性能增强。然后,我们研究了针对此任务(自适应和非自适应)组合分类器的好处,并提出了适用于此双自适应框架的自适应委员会结构。描述了结合两种适应方法以形成由适应成员分类器组成的适应委员会的实验。结果表明,尽管与非自适应参考水平相比,单个分类器的适应平均提供最大的好处,但是使用自适应分类器的自适应组合仍然能够显着提高识别性能。本文在在线手写字符识别领域证明了所提出的双重自适应方法的有用性,但是我们认为所提出的方法也可以应用于其他应用领域。

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