基于多目标优化的智慧城市以用户为中心的分布式路径规划

F. Tiausas, J. P. Talusan, Yu Ishimaki, H. Yamana, H. Yamaguchi, Shameek Bhattacharjee, Abhishek Dubey, K. Yasumoto, Sajal K. Das
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引用次数: 0

摘要

基于边缘的网络物理系统(CPS)的实现在性能、鲁棒性、安全性等方面提出了重要挑战。本文研究了一种在智能城市的路旁单元(rsu)网络上提供以用户为中心的自适应路线规划服务的新方法。关键思想是自适应地选择路由任务参数,如隐私覆盖区域的大小和保留路口的数量,以平衡处理时间、隐私保护级别和隐私增强分布式路由搜索的路由准确性,同时还处理每个查询的用户偏好。这被表述为一个优化问题,其中一组参数给出给定系统约束的一组查询的最佳结果。处理吞吐量、隐私保护和旅行时间精度被发展为需要平衡的目标函数。采用多目标遗传算法(NSGA-II)恢复可行解。然后使用来自日本大阪的交通数据对该方法的性能进行了评估。结果表明,该方法在基于用户偏好平衡上述目标方面表现良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
User-centric Distributed Route Planning in Smart Cities based on Multi-objective Optimization
The realization of edge-based cyber-physical systems (CPS) poses important challenges in terms of performance, robustness, security, etc. This paper examines a novel approach to providing a user-centric adaptive route planning service over a network of Road Side Units (RSUs) in smart cities. The key idea is to adaptively select routing task parameters such as privacy-cloaked area sizes and number of retained intersections to balance processing time, privacy protection level, and route accuracy for privacy-augmented distributed route search while also handling per-query user preferences. This is formulated as an optimization problem with a set of parameters giving the best result for a set of queries given system constraints. Processing Throughput, Privacy Protection, and Travel Time Accuracy were developed as the objective functions to be balanced. A Multi-Objective Genetic Algorithm based technique (NSGA-II) is applied to recover a feasible solution. The performance of this approach was then evaluated using traffic data from Osaka, Japan. Results show good performance of the approach in balancing the aforementioned objectives based on user preferences.
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