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Personal destination pattern analysis with applications to mobile advertising

机译:个人目的地模式分析及其在移动广告中的应用

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Many researchers expect mobile advertising to be the killer application in mobile business. In this paper, we introduce a trajectory prediction algorithm called personal destination pattern analysis (P-DPA) to analyse the different destinations in various trajectories of an individual, and to predict a trajectory or a set of destinations that could be visited by that individual. The P-DPA algorithm works on an individual level. Every destination-pattern analysis is related to the self-history and the personal profile of a targeted individual, not on what others do. In addition, we developed a prototype system called SmartShopper. SmartShopper is a personal destination-pattern-aware pervasive system for mobile advertising in (outdoor and indoor) retail environments. The predicted destinations from the P-DPA algorithm will be used by SmartShopper to generate a list of relevant advertisements adapted to the personal profile of previous destinations of a targeted individual. We tested the destination prediction accuracy of the P-DPA algorithm with a synthetic dataset of a virtual mall and a real GPS dataset.
机译:许多研究人员预计,移动广告将成为移动业务中的杀手级应用。在本文中,我们引入了一种称为个人目的地模式分析(P-DPA)的轨迹预测算法,以分析个人各种轨迹中的不同目的地,并预测该个人可以访问的轨迹或一组目的地。 P-DPA算法在单个级别上工作。每种目的地模式分析都与目标个人的自我历史和个人简介有关,而与其他人的工作无关。此外,我们还开发了一个名为SmartShopper的原型系统。 SmartShopper是一个个人目的地模式感知普及系统,用于(室内和室外)零售环境中的移动广告。 SmartShopper将使用P-DPA算法预测的目的地,以生成适合于目标个人先前目的地的个人资料的相关广告的列表。我们使用虚拟购物中心的综合数据集和真实GPS数据集测试了P-DPA算法的目的地预测准确性。

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