用于感知和响应系统的系统动力学框架

L. An, J. Jeng, M. Ettl, J.-Y. Chung
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引用次数: 13

摘要

感知和响应系统在业务流程级别上实现自主计算的概念。构建感知和响应系统的关键需求之一是准确地捕获和建模业务度量的动态行为,也就是关键性能指标(KPI)。系统动力学(SD)模型和运行时引擎提供了理解关键性能指标和它们之间的动态行为(例如因果关系)的方法。本文提出了一个基于供应链管理领域场景的系统动力学模型。我们的目的是演示构建感知和响应系统的另一种方法。具体来说,我们使用系统动力学来正式定义零售库存和供应商积压的kpi。此外,我们引入目标函数和控制变量作为系统动力学形式的一部分的优化元素。因此,决策(例如,从制造商到供应商的订单大小)将对应于系统相对于定义目标的最优解。这些概念将通过场景来解释。本文还提出了基于系统动力学的启用参考体系结构和部署方法。将系统动力学模型和相应的组件部署到现场后,整个系统将以动态的方式表现出感知和响应行为
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A system dynamics framework for sense-and-respond systems
Sense-and-respond systems realize the concepts of autonomic computing at the level of business processes. One of the key requirements to build sense-and-respond systems is to accurately capture and model the dynamical behavior of business metrics, a.k.a. key performance indicators (KPI). System dynamics (SD) models and the runtime engines provide means to understand both key performance indicators and the dynamic behaviors (e.g. causality) among them. In this paper, we present a system dynamics model based upon a scenario from supply chain management domain. Our purpose is to demonstrate an alternative approach of building sense-and-respond systems. Specifically, we use system dynamics to formally define the KPIs of both the retail inventory and the supplier backlog. Additionally, we introduce objective functions and control variables as the optimization elements being part of the system dynamics formalism. Therefore, the decision (e.g. the order size from manufacturer to suppliers) would correspond to the optimal solution of the system with respect to the defined objective. These concepts will be explained through scenarios. The enabling reference architecture and deployment method using system dynamics are also presented in this paper. After the system dynamics models and corresponding components are deployed to the field, the whole system will manifest the sense-and-respond behavior in a dynamical fashion
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