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ArchCam: Real time expert system for suspicious behaviour detection in ATM site

机译:ArchCam:用于ATM站点中可疑行为检测的实时专家系统

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Automated Teller Machine (ATM) offers great convenience to many people by allowing quick bank transactions and cash withdrawal. However, ATM machines are also vulnerable to attacks when they are unattended during non-office hours and public holidays. Recently, many ATM machines were reported being removed from the premises or damaged using various methods in order to steal the cash inside. Due to this reason, many ATM sites are actually equipped with video surveillance systems to monitor the environment for crime prevention. However, it is difficult for security personnel to pin-point the crime scene in real time when the number of surveillance cameras increases. In this paper, a real time security expert video surveillance system was proposed to detect the suspicious behaviour by utilizing image processing techniques. The proposed expert system, hereafter referred to as ArchCam, is capable in detecting suspicious behaviours that attempt to remove or attack the ATM machines and provide early warning to the centralized video surveillance system. The suspicious behaviour that ArchCam detects include squatting/climbing (attempt to remove security alarm system or place a bomb) and carrying "belt shape" object (attempt to remove the ATM). The squatting/climbing activity is detected through novel technique to estimate the height of the moving object(s) in front of ATM. On the other hand, the "belt shape" object is detected through estimation of object width by using region splitting and merging technique. With the intelligence of detecting suspicious behaviour, the proposed expert system can effectively alert the security personnel to take proactive actions before the cash is being robbed from the ATM machines. This greatly reduces the effort for security personnel as they only need to observe the camera videos with suspicious behaviour, which on the other hand help to improve the possibility of detecting actual crime scene in real time. ArchCam was implemented in an embedded system with GPU platform and has been verified in a simulated ATM setup with good detection accuracy and fast computational timing performance. (C) 2018 Elsevier Ltd. All rights reserved.
机译:自动柜员机(ATM)通过允许快速的银行交易和现金提取为许多人提供了极大的便利。但是,在非办公时间和公共假日无人看管时,ATM机也容易受到攻击。最近,据报道,许多ATM机被从场所移走或使用各种方法损坏,以窃取内部现金。由于这个原因,许多ATM站点实际上都配备了视频监视系统,以监视预防犯罪的环境。但是,当监视摄像机的数量增加时,安全人员很难实时查明犯罪现场。本文提出了一种实时安全专家视频监控系统,该系统利用图像处理技术来检测可疑行为。所提出的专家系统(以下称为ArchCam)能够检测试图删除或攻击ATM机并向集中式视频监控系统提供预警的可疑行为。 ArchCam检测到的可疑行为包​​括蹲/爬(试图移除安全警报系统或放置炸弹)和携带“皮带状”物体(试图移除ATM)。通过新技术检测蹲下/攀爬活动,以估计ATM前方移动物体的高度。另一方面,通过使用区域分割和合并技术通过估计物体的宽度来检测“带状”物体。借助检测可疑行为的智能,建议的专家系统可以有效地提醒安全人员在从ATM机中抢劫现金之前采取主动行动。这极大地减少了安全人员的工作量,因为他们只需要观察可疑行为的摄像机视频,另一方面有助于提高实时检测实际犯罪现场的可能性。 ArchCam在具有GPU平台的嵌入式系统中实现,并已在模拟ATM设置中进行了验证,具有良好的检测精度和快速的计算计时性能。 (C)2018 Elsevier Ltd.保留所有权利。

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