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ScenicPlanner: planning scenic travel routes leveraging heterogeneous user-generated digital footprints

机译:ScenicPlanner:利用用户生成的异构数字足迹规划风景秀丽的旅行路线

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摘要

To facilitate the travel preparation process to a city, a lot of work has been done to recommend a POI or a sequence of POIs automatically to satisfy users' needs. However, most of the existing work ignores the issue of planning the detailed travel routes between POIs, leaving the task to online map services or commercial GPS navigators. Such a service or navigator in terms of suggesting the shortest travel distance or time, which cannot meet the diverse requirements of users. For instance, in the case of traveling by driving for leisure purpose, the scenic view along the travel routes would be of great importance to users, and a good planning service should put the sceneries of the route in higher priority rather than the distance or time taken. To this end, in this paper, we propose a novel framework called ScenicPlanner for route recommendation, leveraging a combination of geo-tagged image and check-in digital footprints from location-based social networks (LBSNs). First, we enrich the road network and assign a proper scenic view score to each road segment to model the scenic road network, by extracting relevant information from geo-tagged images and check-ins. Then, we apply heuristic algorithms to iteratively add road segment and determine the travelling order of added road segments with the objective of maximizing the total scenic view score while satisfying the user-specified constraints (i.e., origin, destination and the total travel distance). Finally, to validate the efficiency and effectiveness of the proposed framework, we conduct extensive experiments on three real-world data sets from the Bay Area in the city of San Francisco, which contain a road network crawled from OpenStreetMap, more than 31 000 geo-tagged images generated by 1 571 Flickr users in one year, and 110 214 check-ins left by 15 680 Foursquare users in six months.
机译:为了促进前往城市的旅行准备过程,已经做了很多工作来自动推荐POI或一系列POI,以满足用户的需求。但是,大多数现有工作都忽略了在POI之间规划详细旅行路线的问题,而将任务留给了在线地图服务或商用GPS导航仪。就建议最短的旅行距离或时间而言,这样的服务或导航器不能满足用户的多样化需求。例如,在以休闲驾驶为目的旅行的情况下,沿着旅行路线的风景对用户来说非常重要,并且良好的规划服务应将路线的风景置于优先位置,而不是距离或时间采取。为此,在本文中,我们提出了一个名为ScenicPlanner的新颖框架,用于路线推荐,它结合了带有地理位置标记的图像和基于位置的社交网络(LBSN)的签入数字足迹。首先,我们通过从带有地理标签的图像和签到中提取相关信息,丰富道路网络,并为每个道路段分配适当的景观分数,以对风景名胜道路网进行建模。然后,我们应用启发式算法来迭代添加路段并确定添加路段的行驶顺序,目的是在满足用户指定的约束(即出发地,目的地和总行驶距离)的同时最大化总风景分数。最后,为了验证所提出框架的效率和有效性,我们对来自旧金山市湾区的三个真实数据集进行了广泛的实验,这些数据集包含从OpenStreetMap抓取的道路网络,超过31000个地理1 571名Flickr用户在一年内生成的带标记的图像,以及15 680个Foursquare用户在六个月内留下的110 214个签到。

著录项

  • 来源
    《Frontiers of computer science in China》 |2017年第1期|61-74|共14页
  • 作者单位

    School of Computer Science, Chongqing University, Chongqing 400044, China;

    Center of Chongqing Automotive Collaborative Innovation, Chongqing University, Chongqing 400044, China;

    School of Computer Science, Northwestern Polytechnical University, Xi'an 710072, China;

    School of Electronics Engineering and Computer Science, Peking University, Beijing 100871, China;

    School of Electronics Engineering and Computer Science, Peking University, Beijing 100871, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    scenic view; travel route planning; heterogeneous; digital footprint;

    机译:优美的风景;旅行路线规划;异质;数字足迹;

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