基于图像处理的伊斯兰礼拜姿势监测与预警活动

M. M. Rahman, R. A. A. Alharazi, Muhammad Khairul Imran B Zainal Badri
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引用次数: 2

摘要

本文介绍了一种基于机器视觉和图像处理学科的检测培训系统。在伊斯兰教中,礼拜(即Salat)是伊斯兰教的第二支柱。这是最重要和最基本的崇拜活动,信徒每天必须进行五次。从手势的角度来看,有预定义的人类姿势,必须以精确的方式执行。互联网和社交媒体上有很多培训和纠正的材料。然而,有些人由于不熟悉salat或甚至学习了错误的祈祷而不能正确地执行这些姿势。此外,在每个姿势上花费的时间必须是平衡的。为了解决这些问题,我们建议开发一个辅助智能框架,指导崇拜者评估他们祈祷姿势的正确性。提取和分析图像的许多特征。采用图像比较和模式匹配的方法,利用欧几里得距离、模板匹配和灰度关联等几种组合算法,将用户的图像与数据库进行对比,研究系统的有效性。实验结果,正确和不正确的salat性能,通过图片和图表显示了salat的每个姿势。系统的局限性,如照明,讨论了它如何影响系统的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monitoring and Alarming Activity of Islamic Prayer (Salat) Posture Using Image Processing
This paper introduced a Salat Inspection and Training System based on Machine Vision and Image Processing Subject. In Islam, prayer (i.e., Salat) is the second pillar of Islam. It is the most important and fundamental worshipping activity that believers have to perform five times a day. From gestures’ perspective, there are predefined human postures that must be performed in a precise manner. There are lots of materials on the Internet and social media for training and correction purposes. However, some people do not perform these postures correctly due to being new to salat or even having learned prayers incorrectly. Furthermore, the time spent in each posture has to be balanced. To address these issues, we propose to develop an assistive intelligence framework that guides worshippers to evaluate the correctness of their prayer’s postures. Many features of images are being extracted and analyzed. Methods for image comparison and pattern matching are used to study the system’s effectiveness by using several combining algorithms, such as Euclidean Distance, Template Matching and Grey-Level Correlation, to compare the images of the user and the database. The experiments’ results, both correct and incorrect salat performances, are shown via pictures and graph for each of the postures of salat. Limitations of the system, such as lighting, is discussed regarding how it affects the system’s performance.
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