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Feature Extraction Methods in Sign Language Recognition System: A Literature Review

机译:手语识别系统中的特征提取方法研究综述

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Sign language is a way to communicate between deaf-mute people and normal people by performing hand gesture. Visual-based gesture recognition can help to overcome this communication limitation. Recently, several techniques and methods have been proposed in this area of research and showed some improvements. Despite all of the proposed methods, most of hand gesture recognition approaches that have been applied still lack of compatibility and have lots of limitations. For instance, hand segmentation meets the complication of distinguishing the hand and the face region by using skin detection. Motivated by those facts, this paper presents a review and explains progress of feature extraction in sign language recognition mostly in the last ten years. In this contribution, we focus on studying feature extraction methods. The literature used in this study is based on the previous published international papers which discussed sign language recognition. The main objectives from this review are to get the most effective and most compatible feature extraction method to be applied to sign language recognition system and to further research progress in the future. After reviewing various recognition techniques, we can conclude that the current works have successfully improve hand gesture recognition by inventing a technology which helps for tracking hands region precisely by using an active sensor. However, there is still room for improvements based on a markerless passive sensor, such as vision-based approaches.
机译:手语是聋哑人和正常人之间通过手势进行交流的一种方式。基于视觉的手势识别可以帮助克服这种通信限制。最近,在该研究领域中提出了几种技术和方法,并显示出一些改进。尽管提出了所有建议的方法,但是大多数已应用的手势识别方法仍然缺乏兼容性,并且存在很多局限性。例如,手部分割遇到通过使用皮肤检测来区分手和脸部区域的复杂性。基于这些事实,本文主要是回顾和解释了过去十年来手语识别中特征提取的进展。在这项贡献中,我们专注于研究特征提取方法。本研究中使用的文献基于先前讨论手语识别的国际论文。这篇综述的主要目标是获得最有效,最兼容的特征提取方法,以应用于手语识别系统,并在未来进一步研究进展。在回顾了各种识别技术之后,我们可以得出结论,当前的工作已经通过发明一种技术来成功地改善了手势识别,该技术可以通过使用有源传感器来精确地跟踪手部区域。但是,基于无标记的无源传感器,例如基于视觉的方法,仍有改进的空间。

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