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Enhancing lifetime of visual sensor networks with a preprocessing-based multi-face detection method

机译:通过基于预处理的多人脸检测方法来延长视觉传感器网络的寿命

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Recently, advances in hardware such as CMOS camera nodes have led to the development of Visual Sensor Networks (VSNs) that process sensed data and transmit the useful information to the base station for completing subsequent tasks. Today, object detection and sending useful information to the base station for object recognition is emerged as an important challenging issue in VSNs. Our investigations show that the face's information is adequate for completing object recognition. According to literature, many approaches have been proposed for object detection and sending useful information to the base station to be completed subsequent tasks like object recognition. However, in most of them, lack of preprocessing methods in camera nodes causes network to be faced with large volume of data. For example when there is more than one object within the each camera node filed-of-view, conventional works deliver empty spaces among objects to the base station. Also, most of them send whole information about each object to the base station, while sending only face's information of each object is adequate for completing object recognition. Therefore, in this paper, a preprocessing method in camera nodes named Preprocessing-based Multi-Face Detection (PMFD) is proposed. Our method works based on the extracting bounding box of each object's face, using Boosting-based face detection algorithm, and sending only the faces' information to the base station. The simulation results show that PMFD method has acceptable preprocessing time complexity and injects low volume of traffic into the network. Consequently, PMFD method prolongs the network lifetime in comparison with state-of-the-art algorithms.
机译:近来,诸如CMOS相机节点之类的硬件的进步导致了视觉传感器网络(VSN)的发展,该视觉传感器网络处理感测的数据并将有用的信息传输到基站以完成后续任务。如今,对象检测以及向基站发送有用信息以进行对象识别已成为VSN中一个重要的挑战性问题。我们的研究表明,面部信息足以完成物体识别。根据文献,已经提出了许多用于对象检测和向基站发送有用信息以完成诸如对象识别之类的后续任务的方法。但是,在大多数情况下,相机节点中缺乏预处理方法会导致网络面临大量数据。例如,当在每个摄像机节点视野中有多个对象时,常规工作将对象之间的空白空间传递给基站。同样,它们中的大多数将有关每个对象的全部信息发送到基站,而仅发送每个对象的面部信息就足以完成对象识别。因此,本文提出了一种在相机节点中的预处理方法,称为基于预处理的多人脸检测(PMFD)。我们的方法基于每个对象的面部提取边界框,使用基于Boosting的面部检测算法,然后仅将面部信息发送到基站。仿真结果表明,PMFD方法具有可接受的预处理时间复杂度,并向网络中注入少量流量。因此,与最新算法相比,PMFD方法可延长网络寿命。

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