Xu Zizhen, Chopra Shauhrat S
School of Energy and Environment, City University of Hong Kong, Tat Chee Avenue, Hong Kong SAR, China.
Nat Commun. 2023 Jul 18;14(1):4291. doi: 10.1038/s41467-023-39999-w.
The growing interconnectedness of urban infrastructure networks presents challenges to their ability to handle unforeseen disruptions, particularly in the context of extreme weather events resulting from climate change. Understanding the resilience of interconnected infrastructure systems is imperative to effectively manage such disruptions. This study investigates the role of interconnectedness in enhancing the resilience of public transportation systems in Hong Kong, a city heavily reliant on public transit. Our results demonstrate that interconnected transportation systems improve resilience by reducing topological vulnerabilities, increasing attack tolerance, and enhancing post-disruption interoperability. Findings also identify the potential to integrate vulnerable systems for greater robustness and highlight the marginal benefits of enhancing intermodal transfer. Strengthening interconnectedness among modes of urban public transit fosters a safe-to-fail system, presenting a distinct resilience-by-design approach. This complements conventional resilience-by-intervention approaches that focus on improving individual systems or introducing entirely new systems.
城市基础设施网络之间日益增强的互联互通性给它们应对意外干扰的能力带来了挑战,尤其是在气候变化导致的极端天气事件背景下。了解互联基础设施系统的恢复力对于有效管理此类干扰至关重要。本研究调查了互联互通性在增强香港公共交通系统恢复力方面的作用,香港是一个严重依赖公共交通的城市。我们的结果表明,互联交通系统通过降低拓扑脆弱性、提高攻击耐受性和增强干扰后互操作性来提高恢复力。研究结果还确定了整合脆弱系统以提高稳健性的潜力,并突出了增强多式联运的边际效益。加强城市公共交通方式之间的互联互通性促进了一个容错系统的形成,提出了一种独特的“设计恢复力”方法。这补充了传统的“干预恢复力”方法,后者侧重于改进单个系统或引入全新系统。