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A methodology for gestural interaction relying on user-defined gestures sets following a one-shot learning approach

机译:一种依赖于一拍学习方法的用户定义手势组的识别手势交互的方法

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摘要

Human communication has been studied from different approaches and resulting in contributions to several disciplines. From the computer sciences point of view, the findings made in the area have inspired the development of Natural User Interfaces (NUT), interaction mechanisms aimed at replicating the way in which people communicate, so the information exchange with computational systems happens in similar fashion. Gestural interfaces are a specific type of NUI focused on analyzing the relationship between body motion and semantic meanings. Although, from a technical perspective, proposals found in the literature had proven high efficiency and accuracy on gestural recognition, several authors had reported lack of naturalness in the interaction with gesture-based applications, leading to the conclusion that NUIs are not usually as natural as they claim to be. Moreover, gestures are culture and language specific, which makes them ambiguous, incompletely specified, and difficult to match with semantic meaning when the context is unknown. In this paper, we propose a methodology for enabling the development of gesture-based applications, considering that accuracy and efficiency in recognition tasks must not be affected, and prioritizing the flexibility for allowing the use of gestures that are suitable for different user contexts through the exploration of user-defined gesture sets and Machine Learning techniques, and using a one-shot learning approach.
机译:从不同的方法研究了人类的沟通,并导致几个学科的贡献。从计算机科学的角度来看,该地区的调查结果激发了自然用户界面的发展(坚果),旨在复制人们沟通方式的交互机制,因此与计算系统的信息交换发生在类似的方式。特定Nui的特定类型的界面专注于分析身体运动和语义含义之间的关系。尽管从技术角度来看,文献中的提议已经证明了对识别识别的高效率和准确性,但是一些作者报告缺乏与基于姿态的应用的互动缺乏自然,导致Nuis通常不那么自然的结论他们声称是。此外,手势是文化和语言特定的,这使得它们模糊,不完全指定,并且当上下文未知时难以与语义含义匹配。在本文中,考虑到不得影响识别任务的准确性和效率,提出了一种能够实现基于手势的应用的方法,并不受到允许使用适合不同用户上下文的手势的灵活性的灵活性探索用户定义的手势组和机器学习技术,并使用单次学习方法。

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