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A THEORETICAL APPROACH FOR ITS DATA ANALYSES USING CYBER INFRASTRUCTURE

机译:利用网络基础设施进行数据分析的理论方法

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This paper presents a theoretical approach that has been developed to capture the computational intensity and computing resource requirements of intelligent transportation system (ITS) data and analysis methods. These requirements can be transformed into a common framework, region-based divisions of ITS computational data processing, which supports the efficient use of cyber infrastructure. The computational transformation is performed to characterize the computational intensity of a particular ITS data analyses. The application of the theoretical approach is illustrated using two ITS data processing methods: multi-sensor data fusion by integrating federated Kalman filter and D-S evidence theory, and geospatial computation on GPS data for urban traffic monitoring. Through the application, the development of region-based division method is decoupled from specific high performance computer architecture and implementations, which makes the design of generic parallel processing solutions feasible for ITS data analyses. The experimental results show that the framework can be applied to divide the ITS data analyses based on regions into a balanced set of computing tasks, and parallelizing data fusion and geospatial computation algorithms achieves better speedup.
机译:本文提出了一种理论方法,该方法已被开发用于捕获智能运输系统(ITS)数据的计算强度和计算资源需求以及分析方法。这些需求可以转换为一个通用框架,即ITS计算数据处理的基于区域的划分,从而支持有效利用网络基础架构。执行计算转换以表征特定ITS数据分析的计算强度。通过两种ITS数据处理方法说明了该理论方法的应用:通过联合联邦卡尔曼滤波器和D-S证据理论进行多传感器数据融合,以及对GPS数据进行地理空间计算以进行城市交通监控。通过该应用程序,将基于区域的划分方法的开发与特定的高性能计算机体系结构和实现方式分离开来,这使得通用并行处理解决方案的设计对于ITS数据分析是可行的。实验结果表明,该框架可用于将基于区域的ITS数据分析划分为一组平衡的计算任务,并且并行化数据融合和地理空间计算算法可实现更好的加速。

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