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First-order agent-based models of emergent behaviour of Dictyostelium discoideum and their inspiration for swarm robotics: A selection of aggregation phase behaviour with biological illustrations

机译:基于一级代理的代理人的突发行为模型Dictyostelium Discoidum及其对群体机器人的启发:与生物插图的聚集阶段行为选择

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Collective behaviour in nature provides a source of inspiration to engineer artificial collective adaptive systems, due to their mechanisms favouring adaptation to environmental changes and enabling complex emergent behaviour to arise from a relatively simple behaviour of individual entities. As part of our ongoing research, we study the social amoeba Dictyostelium discoideum to derive agent-based models and mechanisms that we can then exploit in artificial systems, in particular in swarm robotics. In this paper, we present a selection of agent-based models of the aggregation phase of D. discoideum, their corresponding biological illustrations and how we used them as an inspiration for transposing this behaviour into swarms of Kilobots. We focus on the stream-breaking phenomenon occurring during the aggregation phase of the life cycle of D. discoideum. Results show that the breakup of aggregation streams depends on cell density, motility, motive force and the concentration of cAMP and CF. The breakup also comes with the appearance of late centres. Our computational results show similar behaviour to our biological experiments, using Ax2(ka) strain. For swarm robotics experiments, we focus on signalling and aggregation towards a centre.
机译:自然界中的集体行为为工程师人工集体自适应系统提供了一种灵感来源,因为它们的机制有利于对环境变化的适应,并实现复杂的紧急行为,从个别实体的相对简单的行为产生。作为我们正在进行的研究的一部分,我们研究了社会amoeba dictyostelium discoideum,以推导出基于代理的模型和机制,然后我们可以在人工系统中利用人工系统,特别是在群体机器人中。在本文中,我们展示了一系列基于代理的代理的模型,其D. DigoSoideum的聚集阶段,它们的相应生物插图以及我们如何将它们作为将这种行为转换为千鲈的群体的灵感。我们专注于在D. Diveoideum的生命周期的聚集阶段发生的流突破现象。结果表明,聚集流的分解取决于细胞密度,动力,动力和营地浓度和CF。分手还附带了晚期的外观。我们的计算结果显示了使用AX2(KA)菌株的生物实验的类似行为。对于群体机器人实验,我们专注于向中心的信令和聚集。

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