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VisitSense: Sensing Place Visit Patterns from Ambient Radio on Smartphones for Targeted Mobile Ads in Shopping Malls

机译:VisitSense:从智能手机上的环境广播中感知地点访问模式以针对购物中心中的目标移动广告

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摘要

In this paper, we introduce a novel smartphone framework called VisitSense that automatically detects and predicts a smartphone user’s place visits from ambient radio to enable behavioral targeting for mobile ads in large shopping malls. VisitSense enables mobile app developers to adopt visit-pattern-aware mobile advertising for shopping mall visitors in their apps. It also benefits mobile users by allowing them to receive highly relevant mobile ads that are aware of their place visit patterns in shopping malls. To achieve the goal, VisitSense employs accurate visit detection and prediction methods. For accurate visit detection, we develop a change-based detection method to take into consideration the stability change of ambient radio and the mobility change of users. It performs well in large shopping malls where ambient radio is quite noisy and causes existing algorithms to easily fail. In addition, we proposed a causality-based visit prediction model to capture the causality in the sequential visit patterns for effective prediction. We have developed a VisitSense prototype system, and a visit-pattern-aware mobile advertising application that is based on it. Furthermore, we deploy the system in the COEX Mall, one of the largest shopping malls in Korea, and conduct diverse experiments to show the effectiveness of VisitSense.
机译:在本文中,我们介绍了一种名为VisitSense的新型智能手机框架,该框架可自动检测并预测智能手机用户从周围广播接收的访问次数,从而可以针对大型购物中心的移动广告进行行为定位。 VisitSense使移动应用程序开发人员能够在其应用程序中为购物商场的访客采用支持访问模式的移动广告。它还使移动用户受益,因为他们允许他们接收高度相关的移动广告,这些广告了解他们在购物中心的到店方式。为了实现这一目标,VisitSense采用了准确的访问检测和预测方法。为了进行准确的访问检测,我们开发了一种基于变化的检测方法,以考虑到环境无线电的稳定性变化和用户的移动性变化。它在环境噪音很大的大型购物中心中表现良好,并导致现有算法容易失败。此外,我们提出了一种基于因果关系的访问量预测模型,以捕获顺序访问模式中的因果关系以进行有效预测。我们已经开发了VisitSense原型系统,并基于该系统开发了一种具有访问模式的移动广告应用程序。此外,我们在韩国最大的购物中心之一COEX购物中心中部署了该系统,并进行了各种实验以证明VisitSense的有效性。

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