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Z language based an algorithm for event detection, analysis and classification in machine vision

机译:基于Z语言的机器视觉事件检测,分析和分类算法

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A common task in various machine learning (ML) application areas involves observing regularly gathered data for ‘interesting’ events. This mission is predominant in reconnaissance, but also in responsibilities fluctuating from the investigation of scientific data to the observing of unsurprisingly happening events, and from controlling engineering procedures to noticing human behavior. We will refer to this observing procedure with the determination of classifying remarkable manifestations, as event detection, analysis and classification. With the appearance of personal computers (PCs) a lot of efforts have been made to substitute manual investigation by a computerized manner. Data, nevertheless, have become gradually difficult, and the sizes of gathered data have become enormously bulky in latest years. Text documents, JPEG images, MP3, videos and even relational data are now regularly gathered. In this paper, we propose an algorithm for event detection, analysis and classification in machine vision. Till proposed algorithm is deliberated a significant facility, required degree of event detection cannot be achieved. Finally, we use K-means algorithm for classification of incoming events and proposed algorithm has been validated by Z Formal specification language in general. The proposed algorithm has been implemented in Matlab and results have been gathered through a data mining tool. Using the proposed algorithm, the events are easily detected, analyzed and classified in machine vision.
机译:在各种机器学习(ML)应用领域中的一项常见任务涉及观察定期收集的数据,以了解“有趣”的事件。该任务主要在侦察中,但职责也有所不同,从对科学数据的调查到对意外事件的观察,以及从控制工程程序到注意到人类行为的责任。在确定显着表现的分类时,我们将参考此观察程序,将其称为事件检测,分析和分类。随着个人计算机(PC)的出现,人们已经做出了许多努力来替代以计算机方式进行的手动调查。但是,数据已逐渐变得困难,并且近年来收集的数据量变得非常庞大。现在可以定期收集文本文档,JPEG图像,MP3,视频甚至关系数据。在本文中,我们提出了一种用于机器视觉中事件检测,分析和分类的算法。直到提出的算法被认为是一种重要的手段,才能达到所需程度的事件检测。最后,我们使用K-means算法对传入事件进行分类,并且所提出的算法已通过Z形式规范语言进行了总体验证。该算法已在Matlab中实现,并通过数据挖掘工具收集了结果。使用提出的算法,可以在机器视觉中轻松检测,分析和分类事件。

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