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Multi-objective optimization for maintaining low-noise pavement network system in Hong Kong

机译:维持香港低噪声路面网络系统的多目标优化

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摘要

Low noise, as one of the emerging pavement functions, has received growing interest recently, but was rarely considered in pavement management system. To fill this gap, this study aims to develop a multi-objective optimization (MOO) decision-support system for maintaining the lownoise pavement network system. Three objectives were considered: (1) maximizing the average Close Proximity (CPX) level reduction, (2) minimizing the maintenance costs, and (3) minimizing the greenhouse gas emissions generated from the maintenance. The non-dominated sorting genetic algorithm II (NSGA-II) was employed to search for the optimal intervention strategies. The proposed model was implemented in a case study in Hong Kong to demonstrate its capability. The optimization strategies developed in this study could provide more informative reference for the decision-makers. The best-compromised strategy could be determined by trading off different solution sets subjected to the specific social situations, budget limitations and policy restrictions.
机译:低噪音,作为新兴路面功能之一,最近受到了日益增长的感兴趣,但很少在路面管理系统中考虑。为了填补这一差距,本研究旨在开发一种用于维护Lownoise路面网络系统的多目标优化(MOO)决策支持系统。考虑了三个目标:(1)最大化平均近距离(CPX)水平降低(2)最小化维护成本,(3)最小化从维护产生的温室气体排放。非统治分类遗传算法II(NSGA-II)用于寻求最佳干预策略。拟议的模式是在香港的案例研究中实施,以证明其能力。本研究中开发的优化策略可以为决策者提供更丰富的信息。最佳妥协的策略可以通过对特定社交场合,预算限制和政策限制进行不同的解决方案集。

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