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Using space syntax and agent-based approaches for modeling pedestrian volume at the urban scale

机译:使用空间语法和基于代理的方法对城市规模的行人流量进行建模

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Contemporary pedestrian volume models are constructed mainly within the space syntax framework with the help of Multiple Regression Analysis (MRA). Although these models predict the distribution of pedestrian volumes in the network with considerable success, they exhibit difficulties in predicting pedestrian movement in some contexts and in accounting for the combined effect of the street network structure and land-use patterns. In this paper we present an agent-based (AB) pedestrian volume model at the urban scale within the space syntax framework. The model was constructed by incorporating transformed basic components of the MRA-based space syntax model to agents' spatial behavior. The AB and MRA models were implemented in two city centers that differ in their urban growth and morphological characteristics. The suggested AB model demonstrated superiority over the MRA model in predicting pedestrian movement when the correspondence between the street network's structure, land uses and pedestrian movement was relatively low and less consistent. We attribute the superiority of the AB model to its ability to represent the combined effect of street network structure and land-use patterns on the distribution of movement flows in an urban network. (C) 2017 Elsevier Ltd. All rights reserved.
机译:当代行人体积模型主要是在多元语法分析(MRA)的帮助下在空间语法框架内构建的。尽管这些模型在预测行人数量在网络中的分布方面取得了相当大的成功,但它们在预测某些情况下的行人运动以及说明街道网络结构和土地利用方式的综合影响方面表现出了困难。在本文中,我们提出了在空间语法框架内城市规模的基于主体的(AB)行人体积模型。该模型是通过将基于MRA的空间语法模型的变换后的基本成分合并到主体的空间行为而构建的。 AB和MRA模型在两个城市中心实施,这两个城市的城市增长和形态特征有所不同。当街道网络的结构,土地用途和行人运动之间的对应关系相对较低且一致性较低时,建议的AB模型在预测行人运动方面优于MRA模型。我们将AB模型的优越性归因于其能够代表街道网络结构和土地利用模式对城市网络中的移动流量分布的综合影响。 (C)2017 Elsevier Ltd.保留所有权利。

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