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Crowdphysics: Planned and Opportunistic Crowdsourcing for Physical Tasks

机译:人群物理学:针对体力劳动的有计划的机会性众包

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Research on human computation and crowdsourcing has concentrated on tasks that can be accomplished remotely over the Internet. We introduce a general class of problems we call crowdphysics (CP)-crowdsourcing tasks that require people to collaborate and synchronize both in time and physical space. As an illustrative example, we focus on a crowd-powered delivery service-a specific CP instance where people go about their daily lives, but have the opportunity to carry packages to be delivered to specific locations or individuals. Each package is handed off from person to person based on overlaps in time and space until it is delivered. We formulate CP tasks by reduction to a graph-planning problem, and analyze the performance using a large sample of geotagged tweets as a proxy for people's location. We show that packages can be delivered with remarkable speed and coverage. These results hold for the case when we know people's future locations and also when routing without global knowledge, making only local greedy decisions. To our knowledge, this is the first empirical evidence that dynamic networks of mobile individuals are highly navigable.
机译:关于人类计算和众包的研究集中于可以通过Internet远程完成的任务。我们介绍了称为“人群物理学”(crowdphysics)众包任务的一般问题,这些任务需要人们在时间和物理空间上进行协作和同步。作为说明性示例,我们重点关注人群驱动的送货服务-一个特定的CP实例,人们可以在其中度过日常生活,但有机会将包裹运送到特定的地点或个人。根据时间和空间上的重叠,每个包裹都会在人与人之间交接,直到交付为止。我们通过减少图形计划问题来制定CP任务,并使用大量带有地理标记的推文样本(代表人们的位置)来分析性能。我们证明包裹可以以惊人的速度和覆盖范围交付。当我们知道人们的未来位置以及在没有全局知识的情况下仅做出局部贪婪的决策时,这些结果就适用。就我们所知,这是第一个经验证据,表明移动个人的动态网络是高度可导航的。

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