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In-air handwritten Chinese character recognition using multi-stage classifier based on adaptive discriminative locality alignment

机译:基于自适应判别局部对齐的多阶段分类器空中手写汉字识别

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The in-air handwriting is a natural and useful way for human-computer interaction. Yet, to our knowledge, few work has been done for the in-air handwritten Chinese character recognition (IAHCCR). In this paper, we present a multi-stage recognizer to address the problem of IAHCCR. The proposed methods can also deal with the classical handwritten Chinese character recognition (HCCR). We find that the discriminative locality alignment (DLA) technique in HCCR heavily depends on the choice of parameters in practice. To overcome the disadvantage, we present an adaptive discriminative locality alignment (ADLA), which does not involve the parameter optimization process. At the same time, a new static similar characters collection technique is proposed. We evaluate the proposed methods on the IAHCC-UCAS2014 dataset, an in-air handwritten Chinese character dataset constructed by us, as well as the SCUT-COUCH2009 database, a HCCR dataset. The experimental results demonstrate the effectiveness of the proposed methods on two different kinds of dataset.
机译:空中手写是人机交互的一种自然而有用的方式。然而,据我们所知,空中手写汉字识别(IAHCCR)的工作还很少。在本文中,我们提出了一个多阶段识别器来解决IAHCCR问题。所提出的方法还可以处理经典手写汉字识别(HCCR)。我们发现,HCCR中的可辨别位置比对(DLA)技术在很大程度上取决于实际中参数的选择。为了克服该缺点,我们提出了一种自适应判别性局部比对(ADLA),该方法不涉及参数优化过程。同时,提出了一种新的静态相似字符收集技术。我们在IAHCC-UCAS2014数据集(由我们构建的空中手写汉字数据集)以及SCUT-COUCH2009数据库(HCCR数据集)上评估了建议的方法。实验结果证明了该方法在两种不同数据集上的有效性。

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