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Construction of Privacy Preserving Hypertree Agent Organization as Distributed Maximum Spanning Tree

机译:隐私保护超树代理组织作为分布式最大生成树的构建

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Decentralized probabilistic reasoning, constraint reasoning, and decision theoretic reasoning are some of the essential tasks of a multiagent system (MAS). Many frameworks exist for these tasks, and a number of them organize agents into a junction tree (JT). Although these frameworks all reap benefits of communication efficiency and inferential soundness from the JT organization, their potential capacity on agent privacy has not been realized fully. The contribution of this work is a general approach to construct the JT organization through a maximum spanning tree (MST), and a new distributed MST algorithm, that preserve agent privacy on private variables, shared variables and agent identities.
机译:分散的概率推理,约束推理和决策理论推理是多主体系统(MAS)的一些基本任务。存在许多用于这些任务的框架,其中许多框架将代理组织到联结树(JT)中。尽管这些框架都可以从JT组织获得通信效率和推断可靠性的好处,但是它们对代理程序隐私的潜在能力尚未完全实现。这项工作的贡献是通过最大生成树(MST)和新的分布式MST算法构建JT组织的通用方法,该算法可以保留代理变量对私有变量,共享变量和代理身份的隐私。

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