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A data mining technique for discovering distinct patterns of hand signs: implications in user training and computer interface design.

机译:一种发现手势特征的数据挖掘技术:对用户培训和计算机界面设计的影响。

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摘要

Hand signs are considered as one of the important ways to enter information into computers for certain tasks. Computers receive sensor data of hand signs for recognition. When using hand signs as computer inputs, we need to (1) train computer users in the sign language so that their hand signs can be easily recognized by computers, and (2) design the computer interface to avoid the use of confusing signs for improving user input performance and user satisfaction. For user training and computer interface design, it is important to have a knowledge of which signs can be easily recognized by computers and which signs are not distinguishable by computers. This paper presents a data mining technique to discover distinct patterns of hand signs from sensor data. Based on these patterns, we derive a group of indistinguishable signs by computers. Such information can in turn assist in user training and computer interface design.
机译:手势被认为是将信息输入计算机以完成某些任务的重要方式之一。计算机接收手势的传感器数据以进行识别。当使用手势作为计算机输入时,我们需要(1)以手语对计算机用户进行培训,以便他们的手势可以被计算机轻松识别,并且(2)设计计算机界面,以避免使用混淆的手势进行改进用户输入性能和用户满意度。对于用户培训和计算机界面设计,重要的是要知道哪些标志可以被计算机轻松识别,哪些标志不能被计算机区分。本文提出了一种数据挖掘技术,可从传感器数据中发现手势的不同模式。基于这些模式,我们通过计算机得出了一组无法区分的符号。这些信息反过来可以帮助用户培训和计算机界面设计。

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