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More mobile not so well-connected yet: Users' mobility inference model and 6 month field study

机译:更具移动性且联系不紧密:用户的移动性推断模型和6个月的现场研究

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Smartphones assist their users throughout daily life activities. There is much emphasis on the user's mobility support in the research at large. However, we have a weak understanding about users mobility (are they really moving?) and how well connected are they across their typical day. First, to infer mobility state of users, we derived and evaluated the accuracy of a machine learning-based model, i.e., MobilitySensor, which is based solely on smartphone built-in sensors. It is a tree-based model, defined for each network operator and its average accuracy reaches 91%. Next, we leverage our algorithm to explore the mobility of 34 users served by 3 different Swiss operators (OP) during a period of six months, correlating it with their connectivity. The user study results showed that users are statistically significantly more mobile than we observed in the past (21±7% of the time, i.e., up to 4.3h vs. 13±12%, i.e., 2.7h in 2011) and when they are mobile, 4G network is available to them 38±12% of the time. Furthermore, when mobile, depending on their operator, they may be provided with up to around 10% of the time with 2.5G connectivity (for OP1 and OP2 vs. only 4% OP3), or provided mainly with 3G (49% for OP1 vs. 34% for OP3). Based on the results we provide a set of design implications for application providers, users and operators alike, all striving to improve the mobile users' quality of experience (QoE).
机译:智能手机可在整个日常生活中为用户提供帮助。在整个研究中,非常重视用户的移动性支持。但是,我们对用户移动性(他们真的在移动吗?)以及他们在一整天中的联系程度了解得很少。首先,为了推断用户的移动状态,我们导出并评估了基于机器学习的模型(即MobilitySensor)的准确性,该模型仅基于智能手机内置传感器。这是一个基于树的模型,为每个网络运营商定义,其平均准确性达到91%。接下来,我们利用我们的算法来探索3个不同的瑞士运营商(OP)在六个月内为34位用户提供的移动性,并将其与他们的连接性相关联。使用者研究结果显示,从统计上来说,使用者的行动能力比过去(21±7%的时间,即长达4​​.3小时,而2011年为13±12%,即2.7小时)显着提高。如果是移动设备,则在38±12%的时间内可以使用4G网络。此外,在移动时,根据其运营商的不同,可能会在大约10%的时间内为他们提供2.5G连接(OP1和OP2,而OP3仅为4%),或者主要提供3G(OP1为49%)而OP3则为34%)。基于结果,我们为应用程序提供商,用户和运营商提供了一系列设计含义,所有这些都致力于提高移动用户的体验质量(QoE)。

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