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Recognition of signed expressions using visually-Oriented subunits obtained by an immune-Based optimization

机译:使用通过基于免疫基优化获得的视觉导向亚基识别签名表达

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摘要

The paper considers automatic visual recognition of signed expressions. The proposed method is based on modeling gestures with subunits, which is similar to modeling speech by means of phonemes. To define the subunits a data-driven procedure is applied. The procedure consists in partitioning time series, extracted from video, into subsequences which form homogeneous groups. The cut points are determined by an immune optimization procedure based on quality assessment of the resulting clusters. In the paper the problem is formulated, its solution method is proposed and experimentally verified on a database of 100 Polish words. The results show that our subunit-based classifier outperforms its whole-word-based counterpart, which is particularly evident when new words are recognized on the basis of a small number of examples.
机译:该论文考虑了签名表达的自动视觉识别。所提出的方法基于具有子单元的建模手势,其与通过音素的建模语音类似。要定义子单元,应用数据驱动过程。该过程包括从视频中提取的分区时间序列,进入形成均匀组的子序列。切割点由基于所得簇的质量评估的免疫优化过程确定。在本文中,该问题的制定,提出了其解决方法,并在100波兰单词的数据库上进行实验验证。结果表明,基于亚基的分类器优于基于整个词的对应物,当基于少量示例识别新词时,这尤其明显。

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