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Life-Cycle Asset Management in Residential Developments Building on Transport System Critical Attributes via a Data-Mining Algorithm

机译:通过数据挖掘算法,基于交通系统关键属性的住宅开发中的生命周期资产管理

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Public transport can discourage individual car usage as a life-cycle asset management strategy towards carbon neutrality. An effective public transport system contributes greatly to the wider goal of a sustainable built environment, provided the critical transit system attributes are measured and addressed to (continue to) improve commuter uptake of public systems by residents living and working in local communities. Travel data from intra-city travellers can advise discrete policy recommendations based on a residential area or development’s public transport demand. Commuter segments related to travelling frequency, satisfaction from service level, and its value for money are evaluated to extract econometric models/association rules. A data mining algorithm with minimum confidence, support, interest, syntactic constraints and meaningfulness measure as inputs is designed to exploit a large set of 31 variables collected for 1,520 respondents, generating 72 models. This methodology presents an alternative to multivariate analyses to find correlations in bigger databases of categorical variables. Results here augment literature by highlighting traveller perceptions related to frequency of buses, journey time, and capacity, as a net positive effect of frequent buses operating on rapid transit routes. Policymakers can address public transport uptake through service frequency variation during peak-hours with resultant reduced car dependence apt to reduce induced life-cycle environmental burdens of buildings by altering residents’ mode choices, and a potential design change of buildings towards a public transit-based, compact, and shared space urban built environment.
机译:公共交通不鼓励将个人汽车的使用作为实现碳中和的生命周期资产管理策略。有效的公共交通系统可为可持续建筑环境的更广泛目标做出重大贡献,前提是要衡量和解决关键的公交系统属性,以(继续)提高在当地社区生活和工作的居民对公共系统的通勤使用。来自市区内旅行者的旅行数据可以根据居住区或开发项目的公共交通需求提出不同的政策建议。与通勤频率,服务水平的满意度及其物有所值有关的通勤段经过评估,以提取计量经济模型/关联规则。设计一种具有最小置信度,支持度,兴趣度,句法约束和有意义度度量作为输入的数据挖掘算法,以利用为1,520个受访者收集的31个变量的大集合,生成72个模型。这种方法为多元分析提供了一种替代方法,可以在较大的分类变量数据库中找到相关性。这里的结果通过强调旅行者对公交车的频率,出行时间和容量的理解,从而丰富了文献,这是快速公交路线上频繁运营的公交车的净积极影响。政策制定者可以通过在高峰时段改变服务频率来解决公共交通的使用问题,从而减少对汽车的依赖,从而可以通过改变居民的模式选择来减少建筑物的生命周期诱导的环境负担,并可以针对公共交通为基础对建筑物进行潜在的设计变更,紧凑且共享空间的城市建筑环境。

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