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Itinerary recommender system with semantic trajectory pattern mining from geo-tagged photos

机译:带有地理标记照片的语义轨迹模式挖掘的路线推荐系统

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A large number of geo-tagged photos become available online due to the advances in geo-tagging services and Web technologies. These geo-tagged photos are indicative of photo-takers' trails and movements, and have been used for mining people movements and trajectory patterns. These geo-tagged photos are inherently spatio-temporal, sequential and implicitly containing aspatial semantics. and recommender systems are collaborative filtering based. There have been some studies to build itinerary recommender systems from these geo-tagged photos, but they fail to consider these dimensions and share some common drawbacks, especially lacking aspatial semantics or temporal information. This paper proposes an itinerary recommender system with semantic trajectory pattern mining from geo-tagged photos by discovering sequential points-of-interest with temporal information from other users' visiting sequences and preferences. Our system considers spatio-temporal, sequential, and aspatial semantics dimensions, and also takes into account user-specified preferences and constraints to customise their requests. It generates a set of customised and targeted semantic-level itineraries meeting the user specified constraints. The proposed method generates these semantic itineraries from historic people's movements by mining frequent travel patterns from geo-tagged photos. Experimental results demonstrate the informativeness, efficiency and effectiveness of our proposed method over traditional approaches. Crown Copyright (C) 2017 Published by Elsevier Ltd. All rights reserved.
机译:由于地理标记服务和Web技术的进步,大量具有地理标记的照片可以在线获得。这些带有地理标签的照片指示了摄影者的踪迹和运动,并已用于挖掘人们的运动和轨迹模式。这些带有地理标签的照片本质上是时空的,连续的并且隐含地包含了空间语义。和推荐系统基于协作过滤。已经进行了一些研究,以这些带有地理标签的照片来构建行程推荐系统,但是它们没有考虑这些维度,并且存在一些共同的缺点,尤其是缺少空间语义或时间信息。通过从其他用户的访问顺序和偏好中获得时间信息,通过发现连续的兴趣点,本文提出了一种具有语义轨迹模式挖掘的路线推荐系统,该语义轨迹模式可从带有地理标签的照片中进行挖掘。我们的系统考虑了时空,顺序和无意义的语义维度,并且还考虑了用户指定的首选项和约束以定制其请求。它生成了一组满足用户指定约束的定制和目标语义级别的路线。所提出的方法通过挖掘带有地理标签的照片的频繁旅行方式,从历史人物的运动中生成这些语义路线。实验结果表明,与传统方法相比,我们提出的方法具有更多的信息,效率和有效性。 Crown版权所有(C)2017,由Elsevier Ltd.出版。保留所有权利。

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