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Multiagent-Based Allocation of Complex Tasks in Social Networks

机译:社交网络中基于Multiagent的复杂任务分配

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摘要

In many social networks (SNs), social individuals often need to work together to accomplish a complex task (e.g., software product development). In the context of SNs, due to the presence of social connections, complex task allocation must achieve satisfactory social effectiveness; in other words, each complex task should be allocated to socially close individuals to enable them to communicate and collaborate effectively. Although several approaches have been proposed to tackle this so-called social task allocation problem, they either suffer from being centralized or ignore the objective of maximizing the social effectiveness. In this paper, we present a distributed multiagent-based task allocation model by dispatching a mobile and cooperative agent to each subtask of each complex task, which also addresses the objective of social effectiveness maximization. With respect to mobility, each agent can transport itself to a suitable individual that has the relevant capability. With respect to cooperativeness, agents can cooperate with each other by forming teams and moving to a suitable individual jointly if the cooperation is beneficial. Our theoretical analyses provide provable performance guarantees of this model. We also apply this model in a set of static and dynamic network settings to investigate its effectiveness, scalability, and robustness. Through experimental results, our model is determined to be effective in improving the system load balance and social effectiveness; this model is scalable in reducing the computation time and is robust in adapting the system dynamics.
机译:在许多社交网络(SN)中,社交个体通常需要一起工作以完成复杂的任务(例如,软件产品开发)。在社交网络中,由于存在社交关系,复杂的任务分配必须达到令人满意的社交效果;换句话说,应该将每个复杂的任务分配给与社会关系密切的个人,以使他们能够有效地进行沟通和协作。尽管已经提出了几种方法来解决这个所谓的社会任务分配问题,但是它们要么受到集中管理,要么忽略了最大化社会效益的目标。在本文中,我们通过向每个复杂任务的每个子任务分配移动和协作代理,从而提出了一种基于多代理的分布式任务分配模型,该模型还解决了社会效益最大化的目标。关于移动性,每个代理可以将其自身传输到具有相关功能的合适个人。关于合作性,如果合作是有益的,代理商可以通过组队并共同搬到合适的个人来相互合作。我们的理论分析为该模型提供了可证明的性能保证。我们还将此模型应用于一组静态和动态网络设置中,以研究其有效性,可伸缩性和鲁棒性。通过实验结果,我们的模型被确定为有效改善系统负载平衡和社会效益的模型;该模型可扩展以减少计算时间,并且在适应系统动态方面具有鲁棒性。

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