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Transfer of resource allocation between overlapping and embedded communities in multiagent social networks

机译:多层社交网络中重叠和嵌入式社区之间资源分配的转移

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In multiagent social networks, resource allocation aims to replicate and distribute resources to optimize the efficiency of agents' resource access. Traditionally, each community in a network is considered separately, producing certain repetitive loads and computationally expensive processing. Observing that relations between communities are significantly simpler than their internal structures, we conclude that relation-based resource transfer could be economical compared to allocating from scratch. Therefore, in this study, we propose a transfer of resource allocation (TRA) method based on overlapping and embedded relations among communities. Our proposed method first identifies the most influential community in a network, with the greatest impact on other communities, and selects it as an original community, allocating its associated resources. The resource distribution is then transferred gradually to other communities based on relations between the completed communities and pending communities. When no transfer is available, another influential community is selected, and the previous steps are repeated until all communities are considered. We present experimental results demonstrating that our proposed TRA method allocated computational resources to agents with a lower cost than traditional methods, with acceptable performance. (C) 2021 Elsevier B.V. All rights reserved.
机译:在多应用社交网络中,资源分配旨在复制和分发资源以优化代理资源访问的效率。传统上,网络中的每个社区都被分开考虑,产生某些重复的负载和计算昂贵的处理。观察社区之间的关系比其内部结构明显更简单,我们得出结论,与从头开始分配相比,基于关系的资源转移可能是经济的。因此,在本研究中,我们提出了基于社区之间重叠和嵌入式关系的资源分配(TRA)方法的转移。我们所提出的方法首先识别网络中最有影响力的社区,对其他社区的影响最大,并选择它作为一个原始社区,分配其相关资源。然后基于完成的社区和未决社区之间的关系逐渐转移到其他社区的资源分布。没有可用的转移时,选择另一个有影响力的社区,并重复前一个步骤,直到考虑所有社区。我们提出了实验结果,证明我们所提出的TRA方法将计算资源分配给具有比传统方法更低的代理商,具有可接受的性能。 (c)2021 elestvier b.v.保留所有权利。

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