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首页> 外文期刊>Journal of Computing in Civil Engineering >Multiple Hypothesis Tracking with Kinematics and Appearance Models on Traffic Flow for Wide Area Traffic Surveillance
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Multiple Hypothesis Tracking with Kinematics and Appearance Models on Traffic Flow for Wide Area Traffic Surveillance

机译:基于运动学和外观模型的交通流多假设跟踪用于广域交通监控

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This paper presents a study of multiple hypothesis tracking (MHT) of vehicles recorded in wide area motion imagery (WAMI) that has persistent coverage. To take advantage of visual information contained in such aerial imagery, the authors propose a novel MHTKAM method that combines multiple hypothesis tracking (MHT) with a kinematics and appearance model (KAM). Experiments were designed and implemented to test MHT-KAM on synthetic data sets with various frame rates, traffic configurations, and detection error rates. The experimental results indicate that this method can achieve promising performance for tracking individual vehicles, even in saturated traffic flow. The experimental findings indicate that the combination of applying high appearance weights in MHT-KAM and using large Mahalanobis distance-based gating solves the longstanding "closely-spaced targets" problem. The results also reveal satisfactory performance on existing aerial imagery data sets with limited quality and frame rates. This novel MHT-KAM method combined with previous computer vision-based approach has the potential to achieve a reliable and robust traffic surveillance system for extracting accurate microscopic data from persistent WAMI for diverse applications. (c) 2019 American Society of Civil Engineers.
机译:本文提出了对具有持久覆盖的广域运动图像(WAMI)中记录的车辆的多重假设跟踪(MHT)的研究。为了利用这种航空影像中包含的视觉信息,作者提出了一种新颖的MHTKAM方法,该方法将多假设跟踪(MHT)与运动学和外观模型(KAM)相结合。设计并实施了实验,以在具有各种帧速率,流量配置和检测错误率的合成数据集上测试MHT-KAM。实验结果表明,即使在饱和交通流量下,该方法也可以实现良好的跟踪单个车辆的性能。实验结果表明,在MHT-KAM中应用高外观重量并使用基于Mahalanobis距离的大型门控解决了长期存在的“近距离目标”问题。结果还显示了在质量和帧速率有限的现有航空影像数据集上的令人满意的性能。这种新颖的MHT-KAM方法与以前的基于计算机视觉的方法相结合,具有实现可靠而强大的交通监控系统的潜力,该系统可从持久性WAMI中提取准确的微观数据,以用于各种应用。 (c)2019美国土木工程师学会。

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