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评估城市公共交通系统中的大流行影响:一种基于可见性图和网络相似性的方法。

Estimating pandemic effects in urban mass transportation systems: An approach based on visibility graphs and network similarity.

作者信息

Perez Yuri, Pereira Fabio Henrique

机构信息

Universidade Nove de Julho, Informatics and Knowledge Management Graduate Program, PPGI-UNINOVE, Rua Vergueiro, 235/249 - Liberdade, São Paulo, 01525-000, SP, Brazil.

Universidade Nove de Julho, Industrial Engineering Graduate Program, PPGI-UNINOVE, Rua Vergueiro, 235/249 - Liberdade, São Paulo, 01525-000, SP, Brazil.

出版信息

Physica A. 2023 Jun 15;620:128772. doi: 10.1016/j.physa.2023.128772. Epub 2023 Apr 20.

Abstract

The COVID-19 pandemic has caused unprecedented disruptions to urban systems worldwide, but the extent and nature of these disruptions are not yet fully understood when it comes to transportation. In this work, we aim to explore how social distancing policies have affected passenger demand in urban mass transportation systems with the goal of supporting informed decisions in policy planning. We propose an approach based on complex networks and clustering time series with similar behavior, investigating possible changes in similarity patterns during pandemics and how they reflect into a regional scale. The methods shown here proved useful in detecting that lines in central or peripheral regions present different dynamics, that bus lines have changed their behavior during pandemic so that similarity relations have changed significantly, and that when social distancing started, there was an abrupt shock in the properties of daily passenger time series, and the system did not return to its original behavior until the end of the evaluated period. The approach allows to track evolution of the community structure in different scenarios providing managers with tools to reinforce or destabilize similarities if needed.

摘要

新冠疫情给全球城市系统带来了前所未有的破坏,但就交通运输而言,这些破坏的程度和性质尚未得到充分了解。在这项工作中,我们旨在探讨社交距离政策如何影响城市公共交通系统中的乘客需求,以便为政策规划提供明智决策。我们提出了一种基于复杂网络和具有相似行为的聚类时间序列的方法,研究疫情期间相似性模式的可能变化以及它们如何反映到区域尺度上。这里展示的方法被证明有助于检测中心或周边地区的线路呈现出不同的动态,公交线路在疫情期间改变了其行为,以至于相似性关系发生了显著变化,并且当社交距离措施开始实施时,每日乘客时间序列的属性出现了突然冲击,并且在评估期结束之前系统并未恢复到其原始行为。该方法能够跟踪不同情景下社区结构的演变,为管理者提供工具,以便在需要时加强或破坏相似性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/416f/10116120/46ab10d76aef/gr1_lrg.jpg

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