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Discovering urban and country dynamics from mobile phone data with spatial correlation patterns

机译:从具有空间相关性模式的手机数据中发现城市和乡村的动态

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摘要

Mobile communication technologies pervade our society and existing wireless networks are able to sense the movement of people, generating large volumes of data related to human activities, such as mobile phone call records. At the present, this kind of data is collected and stored by telecom operators infrastructures mainly for billing reasons, yet it represents a major source of information in the study of human mobility. In this paper, we propose an analytical process aimed at extracting interconnections between different areas of the city that emerge from highly correlated temporal variations of population local densities. To accomplish this objective, we propose a process based on two analytical tools: (i) a method to estimate the presence of people in different geographical areas; and (ii) a method to extract time- and space-constrained sequential patterns capable to capture correlations among geographical areas in terms of significant co-variations of the estimated presence. The methods are presented and combined in order to deal with two real scenarios of different spatial scale: the Paris Region and the whole France. (C) 2013 Elsevier Ltd. All rights reserved.
机译:移动通信技术遍及我们的社会,现有的无线网络能够感知人的活动,生成与人类活动有关的大量数据,例如移动电话记录。目前,这类数据主要由计费运营商的基础设施收集和存储,但它却代表了人类流动性研究的主要信息来源。在本文中,我们提出了一个分析过程,旨在提取由于人口局部密度的高度相关的时间变化而出现的城市不同区域之间的相互联系。为了实现这一目标,我们提出了一个基于两个分析工具的过程:(i)一种估计不同地理区域中人们的存在的方法; (ii)一种提取时间和空间受限的序列模式的方法,该序列模式可以根据估计存在的显着协方差来捕获地理区域之间的相关性。提出并结合了这些方法,以处理两个不同空间规模的真实场景:巴黎地区和整个法国。 (C)2013 Elsevier Ltd.保留所有权利。

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