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Case-based modification for optimization agents: AGENT-OPT

机译:针对优化代理的基于案例的修改:AGENT-OPT

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For the effective implementation of an inter-organizational supply chain on the Web, many optimization model agents need to be embedded in the distributed software agents. For instance, many suppliers make requests to a delivery scheduler who manages a model warehouse at the e-hub. The scheduler deals with the scheduling of many truckers and each trucker's agent must have its own routing optimization models. Since the formulations in the model warehouse vary depending upon the requirements, it is impossible to formulate all combinations in advance. Therefore, we need a case-based model modification scheme that can generate the required formulation from the semantically specified requirement in the agent communication language. This research deals with the issues of the architecture of an optimization model agent system AGENT-OPT, modeling request language in XML, optimization model representation in semantic-level objects using UNIK-OPT, a method of selecting a base model, an optimization model modification language (OMML), and rule-based modification reasoning. The approach is applied to the delivery scheduling to study the effect of base model selection policies on the modification effort. To determine whether to start with a primitive model, full model, or the most similar model, we experimented with the sensitivity of proximity to the primitive model on 24 cases and discovered the threshold for choosing the most efficient base model.
机译:为了在Web上有效地实现组织间供应链,许多优化模型代理需要嵌入到分布式软件代理中。例如,许多供应商向在电子枢纽管理模型仓库的交货调度员提出请求。调度程序处理许多卡车司机的调度,每个卡车司机的代理人必须具有自己的路由优化模型。由于模型仓库中的配方会根据要求而变化,因此不可能预先配方所有组合。因此,我们需要一个基于案例的模型修改方案,该方案可以根据代理通信语言中语义指定的要求生成所需的公式。这项研究涉及优化模型代理系统AGENT-OPT的体系结构,XML中的请求语言建模,使用UNIK-OPT的语义级别对象中的优化模型表示,选择基本模型的方法,优化模型修改的问题语言(OMML)和基于规则的修改推理。该方法应用于交付调度,以研究基本模型选择策略对修改工作的影响。为了确定是从原始模型,完整模型还是最相似的模型开始,我们在24种情况下对接近原始模型的敏感性进行了实验,并发现了选择最有效的基础模型的阈值。

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