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A Committee Machine Implementing the Pattern Recognition Module for Fingerspelling Applications

机译:实现手指识别应用程序模式识别模块的委员会机器

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In several countries, deaf communities adopt the sign language as their official and natural language. This fact inserts a new field for the software application development that can improve sign language dissemination and social inclusion of deaf people. Alphabetic character-based applications, like games and educational softwares, can be adapted to run as fingerspelling-based applications, in which the inputs are signs (static images or videos) rather than letters (typed letters). In this paper, we present a Pattern Recognition Module, implemented by Committee Machine, for fingerspelling applications. The committee experts are built with supervised and unsupervised Fuzzy Learning Vector Quantization models using the "boosting by filtering" strategy. The module was tested in a specific sign language context considering hand configurations and hand movements.
机译:在一些国家,聋人社区将手语作为其官方语言和自然语言。这一事实为软件应用程序开发开辟了一个新领域,可以改善聋人的手语传播和社会包容性。诸如游戏和教育软件之类的基于字母字符的应用程序可适于作为基于拼写的应用程序运行,其中输入是符号(静态图像或视频)而不是字母(键入字母)。在本文中,我们提出了一种由Patterns Machine实现的模式识别模块,用于拼写应用程序。该委员会的专家使用“通过过滤增强”策略,通过监督和无监督的模糊学习矢量量化模型来构建。该模块已在考虑手的配置和手的动作的特定手语环境中进行了测试。

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