首页> 外文会议>2019 2nd International Conference on Intelligent Autonomous Systems >Feature Extraction from Smartphone Images by Using Elliptical Fourier Descriptor, Centroid and Area for Recognizing Indonesian Sign Language SIBI (Sistem Isyarat Bahasa Indonesia)
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Feature Extraction from Smartphone Images by Using Elliptical Fourier Descriptor, Centroid and Area for Recognizing Indonesian Sign Language SIBI (Sistem Isyarat Bahasa Indonesia)

机译:通过使用椭圆傅立叶描述符,质心和区域识别智能手机图像中的特征来识别印度尼西亚手语SIBI(Sistem Isyarat Bahasa Indonesia)

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Sistem Isyarat Bahasa Indonesia (SIBI) is the official sign language in Indonesia. This research aims to create a translator for SIBI to be installed on a smartphone. The translator will analyze gestures for inflectional words, which are root words combined with prefixes, and/or suffixes. The feature extraction method that was used in this research is Elliptical Fourier Descriptor (EFD), additionally centroid and area data were added to retain information on hand orientation, position and shape. The extracted features will be fed into, a Long Short-Term Memory (LSTM) model which will then recognize gestures into text. The method used in this research produced 99% accuracy for root word gestures, 71% accuracy for prefix gestures, 86% accuracy for suffix gestures.
机译:Sistem Isyarat Bahasa Indonesia(SIBI)是印度尼西亚的官方手语。这项研究旨在为SIBI创建一个可安装在智能手机上的翻译器。译者将分析屈折词的手势,这些词是结合了前缀和/或后缀的词根。在这项研究中使用的特征提取方法是椭圆傅立叶描述符(EFD),另外还添加了质心和面积数据以保留有关手的方向,位置和形状的信息。提取的特征将被输入到长短期记忆(LSTM)模型中,该模型随后将手势识别为文本。本研究中使用的方法对词根手势的准确性为99%,对于前缀手势的准确性为71%,对于后缀手势的准确性为86%。

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