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Domain Monotonicity and the Performance of Local Solutions Strategies for CDPS-based Distributed Sensor Interpretation and Distributed Diagnosis

机译:基于CDPS的分布式传感器解释和分布式诊断的域单调性和局部解决方案策略的性能

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The growth in computer networks has created the potential to harness a great deal of computing power, but new models of distributed computing are often required. Cooperative distributed problem solving (CDPS) is the subfield of multi-agent systems (MAS) that is concerned with how large-scale problems can be solved using a network of intelligent agents working together. Building CDPS systems for real-world applications is still very difficult, however, in large part because the effects that domain and strategy characteristics have on the performance of CDPS systems are not well understood. This paper reports on the first results from a new simulation-based analysis system that has been created to study the performance of CDPS-based distributed sensor interpretation (DSI) and distributed diagnosis (DD). To demonstrate the kind of results that can be obtained, we have investigated how the monotonicity of a domain affects the performance of a potentially very efficient class of strategies for CDPS-based DSI/DD. Local solutions strategies attempt to limit communications among the agents by focusing on using the agents' local solutions to produce global solutions. While these strategies have been described as being important for effective CDPS-based DSI/DD, they need not perform well if a domain is nonmonotonic. We had previously suggested that the reason they have performed well in several research systems was that many DSI/DD domains are what we termed nearly monotonic. In this paper, we will provide quantitative results that relate the performance of local solutions strategies to the monotonicity of a domain. The experiments confirm that domain monotonicity can be important to consider, but they also show that it is possible for these strategies to be effective even when domains are relatively nonmonotonic. What is required is that the agents receive a significant fraction of the data that is relevant to their subproblems. This has important implications for the design of DSI/DD systems using local solutions strategies. In addition, while the work indicates that many DSI/DD domains are likely to be "nearly monotonic" according to our original definitions, it also shows that these measures are not as predictive of performance as other measures we define. This means that near monotonicity alone does not explain why local solutions strategies have performed well in previous systems. Instead, a likely explanation is that these systems typically involved only a small number of agents.
机译:计算机网络的增长创造了利用大量计算能力的潜力,但是通常需要新的分布式计算模型。协作式分布式问题解决(CDPS)是多智能体系统(MAS)的子领域,它关注如何通过一起使用智能智能体网络来解决大规模问题。但是,为实际应用程序构建CDPS系统仍然非常困难,这在很大程度上是因为领域和策略特征对CDPS系统性能的影响尚不清楚。本文报告了一个新的基于仿真的分析系统的第一个结果,该系统已被创建用于研究基于CDPS的分布式传感器解释(DSI)和分布式诊断(DD)的性能。为了证明可以获得的结果类型,我们研究了域的单调性如何影响基于CDPS的DSI / DD的潜在非常有效的策略类别的性能。本地解决方案策略试图通过集中于使用代理的本地解决方案来生成全局解决方案来限制代理之间的通信。尽管已将这些策略描述为对有效的基于CDPS的DSI / DD很重要,但如果域是非单调的,则它们并不一定会表现良好。我们之前曾提出,它们在多个研究系统中表现出色的原因是,我们称许多DSI / DD域接近单调。在本文中,我们将提供定量结果,这些结果将局部解决方案策略的性能与域的单调性联系起来。实验证实,域单调性可能是重要的考虑因素,但它们也表明,即使在域相对非单调的情况下,这些策略也可能有效。所要求的是,代理必须接收与其子问题相关的大部分数据。这对于使用本地解决方案策略设计DSI / DD系统具有重要意义。此外,虽然工作表明根据我们最初的定义,许多DSI / DD域可能是“近乎单调的”,但同时也表明,这些措施对性能的预测不如我们定义的其他措施。这意味着仅单调性并不能解释为什么本地解决方案策略在以前的系统中表现良好。相反,可能的解释是这些系统通常仅涉及少量代理。

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