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Interactionless calendar-based training for 802.11 localization

机译:基于交互的基于日历的802.11本地化培训

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This paper presents our work in solving one of the weakest links in 802.11-based indoor-localization: the training of ground-truth received signal strength data. While crowdsourcing this information has been demonstrated to be a viable alternative to the time consuming and accuracy-limited process of manual training [2], one of the chief drawbacks is the rate at which a system can be trained. We demonstrate an approach that utilizes users' calendar and appointment information to perform interactionless training of an 802.11-based indoor localization system. Our system automatically determines if a user attended a calendar event, resulting in accuracy comparable to our previously published large-scale crowdsourced deployment. We find that no other user interaction is necessary to train the system to that level of accuracy when calendar data are available. In ideal conditions, this technique can reduce training time by over a factor of six.
机译:本文介绍了我们在解决基于802.11的室内定位中最薄弱的环节之一方面的工作:训练地面真实接收信号强度数据。虽然已经证明将这种信息进行众包可以替代耗时且精度受限制的手动培训过程[2],但主要缺点之一是系统的培训速度。我们演示了一种利用用户的日历和约会信息来执行基于802.11的室内定位系统的无交互训练的方法。我们的系统会自动确定用户是否参加了日历活动,其准确性可与我们先前发布的大规模众包部署相媲美。我们发现,当日历数据可用时,无需其他用户交互就可以将系统训练到该级别的准确性。在理想条件下,此技术可以将训练时间减少六分之一。

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