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Mobility-Aware Participant Recruitment for Vehicle-Based Mobile Crowdsensing

机译:移动意识到基于车辆的移动人群的参与者招聘

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摘要

Nowadays, vehicles have been increasingly adopted in mobile crowdsensing applications. Due to their predictable mobility trajectories, vehicles as participants bring new insight in improving the crowdsensing quality. The predictable mobility of vehicles provides not only the current locations of the vehicles, but also their future mobility trajectory. In this context, the existing participant recruitment solutions, which are mainly based on the current locations of the participants, cannot be directly used in vehicle-based mobile crowdsensing. Utilizing the predicted mobility trajectory of vehicles, this paper aims to propose efficient vehicle recruitment algorithms formobile crowdsensing, so as tominimize the overall recruitment cost. Specifically, we study two mobility trajectory models of the vehicles, named deterministic and probabilistic models. We first prove that the vehicle recruitment problem under both models is NP-hard. Then, for the deterministic trajectory model, an efficient LP-relaxation-based heuristic algorithm is proposed, and an approximation ratio is analyzed. For the probabilistic trajectory model, we propose a greedy algorithm and analyze its performance with a guaranteed approximation ratio. Finally, we evaluate the performance of the proposed schemes through simulations.
机译:如今,移动人群应用越来越多地采用车辆。由于其可预测的移动性轨迹,作为参与者的车辆提高了提高众群质量的新洞察力。可预测的车辆移动性不仅提供了车辆的当前位置,而且提供了它们未来的移动性轨迹。在这方面,现有的参与者招聘解决方案主要基于参与者的当前位置,不能直接用于车辆的移动人群。利用车辆的预测移动性轨迹,本文旨在提出高效的载体招聘算法形式众群,因此大纲整体招聘成本。具体地,我们研究了两个车辆的移动性轨迹模型,命名为确定性和概率模型。我们首先证明,两种模型的车辆招聘问题都是NP-HARD。然后,对于确定性轨迹模型,提出了一种有效的基于LP弛豫的启发式算法,分析了近似率。对于概率轨迹模型,我们提出了一种贪婪算法,并以保证近似比分析其性能。最后,我们通过模拟评估所提出的方案的性能。

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