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From mobile phone data to the spatial structure of cities

机译:从手机数据到城市空间结构

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摘要

Pervasive infrastructures, such as cell phone networks, enable to capture large amounts of human behavioral data but also provide information about the structure of cities and their dynamical properties. In this article, we focus on these last aspects by studying phone data recorded during 55 days in 31 Spanish cities. We first define an urban dilatation index which measures how the average distance between individuals evolves during the day, allowing us to highlight different types of city structure. We then focus on hotspots, the most crowded places in the city. We propose a parameter free method to detect them and to test the robustness of our results. The number of these hotspots scales sublinearly with the population size, a result in agreement with previous theoretical arguments and measures on employment datasets. We study the lifetime of these hotspots and show in particular that the hierarchy of permanent ones, which constitute the ‘heart' of the city, is very stable whatever the size of the city. The spatial structure of these hotspots is also of interest and allows us to distinguish different categories of cities, from monocentric and “segregated” where the spatial distribution is very dependent on land use, to polycentric where the spatial mixing between land uses is much more important. These results point towards the possibility of a new, quantitative classification of cities using high resolution spatio-temporal data.
机译:诸如手机网络之类的无处不在的基础设施不仅可以捕获大量人类行为数据,还可以提供有关城市结构及其动态特性的信息。在本文中,我们将通过研究西班牙31个城市在55天内记录的电话数据来关注这些最后方面。我们首先定义一个城市扩张指数,该指数衡量个体之间的平均距离如何演变,从而使我们能够突出显示不同类型的城市结构。然后,我们将重点放在热点,即城市中最拥挤的地方。我们提出了一种无参数方法来检测它们并测试结果的稳健性。这些热点的数量与人口规模呈线性关系,这与以前的理论论证和就业数据集测度一致。我们研究了这些热点的生命周期,并特别表明构成城市“心脏”的永久性热点的等级非常稳定,无论城市的规模如何。这些热点的空间结构也很有趣,它使我们能够区分不同类别的城市,从单中心和“隔离”的城市,其空间分布非常依赖于土地利用,而到多中心的城市,其中土地利用之间的空间混合更为重要。这些结果表明使用高分辨率时空数据对城市进行新的定量分类的可能性。

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