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MeasApplInt-a novel intelligence metric for choosing the computing systems able to solve real-life problems with a high intelligence

机译:Measapplint-一种新颖的情报指标,用于选择能够用高智能解决现实生活问题的计算系统

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摘要

Intelligent agent-based systems are applied for many real-life difficult problem-solving tasks in domains like transport and healthcare. In the case of many classes of real-life difficult problems, it is important to make an efficient selection of the computing systems that are able to solve the problems very intelligently. The selection of the appropriate computing systems should be based on an intelligence metric that is able to measure the systems intelligence for real-life problem solving. In this paper, we propose a novel universal metric called MeasApplInt able to measure and compare the real-life problem solving machine intelligence of cooperative multiagent systems (CMASs). Based on their measured intelligence levels, two studied CMASs can be classified to the same or to different classes of intelligence. MeasApplInt is compared with a recent state-of-the-art metric called MetrIntPair. The comparison was based on the same principle of difficult problem-solving intelligence and the same pairwise/matched problem-solving intelligence evaluations. Our analysis shows that the main advantage of MeasApplInt versus the compared metric, is its robustness. For evaluation purposes, we performed an illustrative case study considering two CMASs composed of simple reactive agents providing problem-solving intelligence at the systems' level. The two CMASs have been designed for solving an NP-hard problem with many applications in the standard, modified and generalized formulation. The conclusion of the case study, using the MeasApplInt metric, is that the studied CMASs have the same real-life problems solving intelligence level. An additional experimental evaluation of the proposed metric is attached as an Appendix.
机译:基于智能代理的系统适用于许多现实生活难以解决的域名,如运输和医疗保健。在许多阶段的真实生活困难问题的情况下,重要的是要高效选择能够非常智能地解决问题的计算系统。选择适当的计算系统应基于能够测量用于现场问题解决的系统智能的智能度量。在本文中,我们提出了一种名为MEARAPPLINT的新型通用度量,能够测量和比较协同多层系统(CMASS)的真实问题解决机器智能。基于其测量的智能水平,两个研究的CMASS可以分类为相同或不同的智能类别。与最近称为Metrintpair的最先进的公制进行比较。比较是基于难以解决智慧的相同原则,以及相同的成对/匹配问题解决智力评估。我们的分析表明,Measapplint与比较度量的主要优点是其鲁棒性。为了评估目的,考虑到在系统水平处提供问题解决智能的简单反应性代理组成的两个CMASS进行了说明性案例研究。两种CMASS设计用于解决标准,改性和广义配方中许多应用的NP难题。使用Measapplint度量的案例研究的结论是研究的CMASS具有解决智能水平的相同现实问题。附加指标的另外的实验评估作为附录附上。

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