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Deadline-sensitive User Recruitment for mobile crowdsensing with probabilistic collaboration

机译:截止日期敏感的用户招聘流动众持概率协作

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Mobile crowdsensing is a new paradigm in which a group of mobile users exploit their smart devices to cooperatively perform a large-scale sensing job over urban environments. In this paper, we focus on the Deadline-sensitive User Recruitment (DUR) problem for probabilistically collaborative mobile crowdsensing. Unlike previous works, mobile users in this problem perform sensing tasks with probabilities, and multiple users might be recruited to cooperatively perform a common task, ensuring that the expected completion time is no larger than a deadline. Owing to such a probabilistic collaboration, DUR can be formalized as a non-trivial set cover problem with non-linear programming constraints and an optimization objective of real function. We first prove that the DUR problem is NP-hard. Then, we propose a greedy DUR algorithm, called gDUR, to solve this problem. Next, we prove that the gDUR algorithm can achieve a logarithmic approximation ratio. Furthermore, we extend the problem to a more complex case where sensing duration is taken into consideration, and we propose a sensing-duration-aware user recruitment algorithm, called dDUR. Finally, we validate the performance of the proposed algorithms through extensive simulations, based on a real mobile social network trace and a synthetic trace.
机译:移动crowdsensing是一个新的范例,其中一组移动用户利用他们的智能设备通过城市环境合作进行大规模检测工作。在本文中,我们专注于截止日期敏感的用户招募(DUR)的概率协同移动crowdsensing问题。不同于以往的作品,在这个问题移动用户执行传感任务与概率,以及多个用户可能被招募合作执行共同的任务,确保预期完成时间不超过限期较大。由于这样的概率协作,DUR可以形式化作为非平凡集合覆盖问题与非线性规划约束和实函数的优化目标。我们首先证明了DUR问题是NP难问题。然后,我们提出了一个贪心算法DUR,叫gDUR,来解决这个问题。接下来,我们证明了gDUR算法可以达到对数近似比。此外,我们的问题延伸到感应持续时间考虑更复杂的情况下,我们提出了一个感应持续时间感知用户招募算法,称为dDUR。最后,我们验证了该算法通过大量的模拟性能的基础上,真正的移动社交网络跟踪和合成痕迹。

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