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Evaluation of home detection algorithms on mobile phone data using individual-level ground truth

机译:使用单独的地面真理评估移动电话数据的家庭检测算法

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Inferring mobile phone users’ home location, i.e., assigning a location in space to a user based on data generated by the mobile phone network, is a central task in leveraging mobile phone data to study social and urban phenomena. Despite its widespread use, home detection relies on assumptions that are difficult to check without ground truth, i.e., where the individual who owns the device resides. In this paper, we present a dataset that comprises the mobile phone activity of sixty-five participants for whom the geographical coordinates of their residence location are known. The mobile phone activity refers to Call Detail Records (CDRs), eXtended Detail Records (XDRs), and Control Plane Records (CPRs), which vary in their temporal granularity and differ in the data generation mechanism. We provide an unprecedented evaluation of the accuracy of home detection algorithms and quantify the amount of data needed for each stream to carry out successful home detection for each stream. Our work is useful for researchers and practitioners to minimize data requests and maximize the accuracy of the home antenna location.
机译:推断移动电话用户的家庭位置,即,基于移动电话网络生成的数据在空间中为用户分配位置,是利用移动电话数据来研究社会和城市现象的中心任务。尽管其广泛使用,但家庭检测依赖于无需基础事实的难以检查的假设,即,拥有设备所在的个人驻留。在本文中,我们提供了一个数据集,包括六十五名参与者的移动电话活动,为其居住地区的地理坐标是已知的。移动电话活动是指呼叫详细记录(CDR),扩展详细记录(XDRS)和控制平面记录(CPRS),其在其时间粒度下变化并在数据生成机制中不同。我们提供了对家庭检测算法的准确性的前所未有的评估,并量化每个流的数据量,以对每个流执行成功的家庭检测。我们的工作对于研究人员和从业者来说很有用,以最大限度地减少数据请求并最大限度地提高家庭天线位置的准确性。

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