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Route Recommendations to Business Travelers Exploiting Crowd-Sourced Data

机译:将建议发送给商务旅行者,以利用人群源数据

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Business travellers are those people who attend work-related meetings and in their few hours of spare time would like to see the best that the host city can offer in terms of cultural activities and sightseeings. In this work we present a complex architecture, consisting of mobile applications and back-end server components, which supports business travelers in recommending possible routes matching their preferences within their timing constraints. The three main contributions are (i) a set of machine learning algorithms that can be used to detect a queuing state of a user with a high degree of accuracy, (ii) how to determine user's positioning, and (iii) how to practically realize a planner providing a reasonably good enough route plan within a handful of seconds. Preliminary tests demonstrate that the single components of the proposed architecture are feasible and provide good results.
机译:商务旅行者是那些参加与工作有关的会议的人,在业余时间的几个小时内,他们希望从主办城市的文化活动和观光活动中获得最好的体验。在这项工作中,我们提出了一个复杂的体系结构,该体系结构由移动应用程序和后端服务器组件组成,可支持商务旅行者推荐在其时间限制内与其偏好相匹配的可能路线。这三个主要贡献是(i)一组机器学习算法,可用于高度准确地检测用户的排队状态;(ii)如何确定用户的位置;以及(iii)如何实际实现一个计划者,可以在几秒钟内提供足够合理的路线计划。初步测试表明,所提出体系结构的单个组件是可行的,并提供了良好的结果。

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