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Of robot ants and elephants

机译:机器人蚂蚁和大象

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摘要

Investigations of multi-robot systems often make implicit assumptions concerning the computational capabilities of the robots. Despite the lack of explicit attention to the computational capabilities of robots, two computational classes of robots emerge as focal points of recent research: Robot Ants and robot Elephants. Ants have poor memory and communication capabilities, but are able to communicate using pheromones, in effect turning their work area into a shared memory. By comparison, elephants are computationally stronger, have large memory, and are equipped with strong sensing and communication capabilities. Unfortunately, not much is known about the relation between the capabilities of these models in terms of the tasks they can address. In this paper, we present formal models of both ants and elephants, and investigate if one dominates the other. We present two algorithms: AntEater, which allows elephant robots to execute ant algorithms; and ElephantGun, which converts elephant algorithms---specified as Turing machines---into ant algorithms. By exploring the computational capabilities of these algorithms, we reach interesting conclusions regarding the computational power of both models.
机译:对多机器人系统的研究通常会对机器人的计算能力做出隐含的假设。尽管对机器人的计算能力缺乏明确的关注,但机器人的两个计算类别却成为了最近研究的重点:机器人蚂蚁和机器人大象。蚂蚁的记忆和通讯能力较差,但是可以使用信息素进行通讯,实际上将其工作区变成了共享内存。相比之下,大象在计算上​​更强大,具有较大的内存,并具有强大的感应和通讯功能。不幸的是,对于这些模型的功能之间可以解决的任务之间的关系知之甚少。在本文中,我们提出了蚂蚁和大象的正式模型,并研究了它们是否占主导地位。我们提出两种算法:AntEater,它允许大象机器人执行蚂蚁算法;和ElephantGun,后者将指定为图灵机的大象算法转换为蚂蚁算法。通过探索这些算法的计算能力,我们得出了关于两个模型的计算能力的有趣结论。

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