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Multi-agent knowledge integration mechanism using particle swarm optimization

机译:基于粒子群算法的多主体知识整合机制

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Unstructured group decision-making is burdened with several central difficulties: unifying the knowledge of multiple experts in an unbiased manner and computational inefficiencies. In addition, a proper means of storing such unified knowledge for later use has not yet been established. Storage difficulties stem from of the integration of the logic underlying multiple experts' decision-making processes and the structured quantification of the impact of each opinion on the final product. To address these difficulties, this paper proposes a novel approach called the multiple agent-based knowledge integration mechanism (MAKIM), in which a fuzzy cognitive map (FCM) is used as a knowledge representation and storage vehicle. In this approach, we use particle swarm optimization (PSO) to adjust causal relationships and causality coefficients from the perspective of global optimization. Once an optimized FCM is constructed an agent based model (ABM) is applied to the inference of the FCM to solve real world problem. The final aggregate knowledge is stored in FCM form and is used to produce proper inference results for other target problems. To test the validity of our approach, we applied MAKIM to a real-world group decision-making problem, an IT project risk assessment, and found MAKIM to be statistically robust.
机译:非结构化的团队决策负担着几个中心难题:以无偏见的方式统一多个专家的知识,并且计算效率低下。另外,尚未建立存储这种统一知识以供以后使用的适当手段。存储困难源于集成了多个专家决策流程所依据的逻辑,以及每种意见对最终产品的影响的结构化量化。为了解决这些困难,本文提出了一种新的方法,称为基于多主体的知识整合机制(MAKIM),其中将模糊认知图(FCM)用作知识表示和存储工具。在这种方法中,我们使用粒子群优化(PSO)从全局优化的角度调整因果关系和因果系数。一旦构建了优化的FCM,就将基于代理的模型(ABM)应用于FCM的推理,以解决现实世界中的问题。最终的汇总知识以FCM形式存储,并用于为其他目标问题产生适当的推断结果。为了测试我们方法的有效性,我们将MAKIM应用于现实世界中的团队决策问题,IT项目风险评估,并发现MAKIM具有统计学上的稳健性。

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