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Intelligent Detection of Missing and Unattended Objects in Complex Scene of Surveillance Videos

机译:智能监控视频场景中遗失物的智能检测

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This study proposes a method to detect and mark the target object removed from the monitoring scene and the unknown object left in the monitoring scene. The present method uses the timeliness background to extract the foreground object and to mask the part that was unwanted. The foreground object was compared with the current frame, thus, the unreliable pixels were filtered out. By the identification of the center of mass (CoM) on foreground object, an object detection rule is developed to determine whether the foreground object is missing object or unattended object. In this paper, the present approach improves the problem with the high similarity of pixels between the foreground object and the background model. The experiment can be applied to any complex environment, both indoors and outdoors, such as the subway station, which is thronged with people. The experimental outcome, using the proposed method, can determine the missing and unattended object accurately and the unreasonable object is excluded in video surveillance system.
机译:这项研究提出了一种检测和标记从监视场景中移出的目标对象以及留在监视场景中的未知对象的方法。本方法使用及时性背景来提取前景对象并掩盖不需要的部分。将前景对象与当前帧进行比较,从而滤除了不可靠的像素。通过识别前景对象上的质心(CoM),开发了一种对象检测规则,以确定前景对象是缺少的对象还是无人值守的对象。在本文中,本方法解决了前景对象与背景模型之间像素高度相似的问题。该实验可应用于室内和室外的任何复杂环境,例如挤满了人的地铁站。利用所提出的方法,实验结果可以准确地确定出丢失和无人看管的物体,在视频监控系统中排除了不合理的物体。

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