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A Bimodal Model to Estimate Dynamic Metropolitan Population by Mobile Phone Data

机译:通过手机数据估计城市人口动态的双峰模型

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摘要

Accurate, real-time and fine-spatial population distribution is crucial for urban planning, government management, and advertisement promotion. Limited by technics and tools, we rely on the census to obtain this information in the past, which is coarse and costly. The popularity of mobile phones gives us a new opportunity to investigate population estimation. However, real-time and accurate population estimation is still a challenging problem because of the coarse localization and complicated user behaviors. With the help of the passively collected human mobility and locations from the mobile networks including call detail records and mobility management signals, we develop a bimodal model beyond the prior work to better estimate real-time population distribution at metropolitan scales. We discuss how the estimation interval, space granularity, and data type will influence the estimation accuracy, and find the data collected from the mobility management signals with the 30 min estimation interval performs better which reduces the population estimation error by 30% in terms of Root Mean Square Error (RMSE). These results show us the great potential of using bimodal model and mobile phone data to estimate real-time population distribution.
机译:准确,实时和精细的人口分布对于城市规划,政府管理和广告宣传至关重要。受技术和工具的限制,我们过去依靠人口普查来获取此信息,这是粗糙且昂贵的。手机的普及为我们提供了一个研究人口估计的新机会。然而,由于粗略的定位和复杂的用户行为,实时和准确的人口估计仍然是一个具有挑战性的问题。借助从移动网络中被动​​收集的人员流动性和位置(包括呼叫详细记录和流动性管理信号)的帮助,我们在先前工作之外开发了双峰模型,以更好地估计城市规模的实时人口分布。我们讨论了估计间隔,空间粒度和数据类型将如何影响估计精度,并发现以30分钟估计间隔从移动性管理信号中收集的数据表现更好,从而从根角度将总体估计误差降低了30%均方误差(RMSE)。这些结果向我们展示了使用双峰模型和手机数据估计实时人口分布的巨大潜力。

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