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A novel non-payment vehicle searching method for multilane-free-flow electronic-toll-collection systems

机译:用于多车道无流量电子收费系统的新型非付费车辆搜索方法

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Since the heaviest traffic congestion on toll highways occurs near toll gates where vehicles make a short stop to pay the toll, an electronic toll collection (ETC) system is usually built to eliminate the traffic jams. In order to find out the non-payment vehicles, the violation enforcement usually includes cameras to capture images of license plates, and a license plate reader system to recode photographs and license plate numbers of all vehicles. Thus, automatic license plate recognition (ALPR) technology is often used in violation enforcement. However, the identification precision of ALPR is not always reliable. Human review and correction will be needed to improve the accuracy and therefore will result in extra manual operation cost. In this paper, we formulate the non-payment vehicle searching problem into a bipartite graph matching problem and propose a Photograph-to-Transaction matching algorithm (PT algorithm) without recognizing all license plate images for multilane-free-flow ETC systems. The PT algorithm not only can reduce the human loading to review and correct the image recognition results but also can accurately identify all non-payment vehicles. The performance of the PT algorithm was evaluated in ns-2 simulator and three different traffic scenarios: congested traffic, normal traffic and sparse traffic. Besides, we also propose two methods to simplify the bipartite graph, one based on the location of transaction data relative to enforcement line, and another based on the lane location where images are captured by cameras. The simulation results show that our algorithm greatly reduce the number of plate recognitions, and is more feasible and reliable for ETC enforcement. This will activate some consequent activities against the violation vehicles.
机译:由于收费公路上最严重的交通拥堵发生在收费站附近,在此处车辆会短暂停车以支付通行费,因此通常会建立电子收费系统(ETC)以消除交通拥堵。为了找出未付款的车辆,违规执法通常包括用于捕获车牌图像的摄像机,以及用于对所有车辆的照片和车牌号进行重新编码的车牌读取器系统。因此,自动车牌识别(ALPR)技术通常用于违规执法中。但是,ALPR的识别精度并不总是可靠的。需要人工检查和纠正以提高准确性,因此将导致额外的人工操作成本。在本文中,我们将非支付车辆搜索问题公式化为二部图匹配问题,并提出了一种无需识别所有车道图像的多车流免费ETC系统的照片到交易匹配算法(PT算法)。 PT算法不仅可以减轻人的负担以查看和校正图像识别结果,而且可以准确地识别所有非付费车辆。在ns-2模拟器和三种不同的流量场景中评估了PT算法的性能:拥塞流量,正常流量和稀疏流量。此外,我们还提出了两种简化二部图的方法,一种基于交易数据相对于执法线的位置,另一种基于相机捕获图像的车道位置。仿真结果表明,我们的算法大大减少了车牌识别的次数,对于ETC的实施更加可行和可靠。这将激活随后针对违规车辆的活动。

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