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Approaches for Simulation Model Reuse in Systems Design - A Review

机译:系统设计中的仿真模型重用方法 - 综述

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In this paper, we review the literature related to the reuse of computer-based simulation models in the context of systems design. Models are used to capture aspects of existing or envisioned systems and are simulated to predict the behavior of these systems. However, developing such models from scratch requires significant time and effort. Researchers have recognized that the time and effort can be reduced if existing models or model components are reused, leading to the study of model reusability. In this paper, we review the tasks necessary to retrieve and reuse model components from repositories, and to prepare new models and model components such that they are more amenable for future reuse. Model reuse can be significantly enhanced by carefully characterizing the model, and capturing its meaning and intent so that potential users can determine whether the model meets their needs. Traditionally, the meaning and intent of models has been captured in textual documentation, but more recently, semantically rich, axiomatized approaches using model characteristics based on ontologies have been introduced that enable algorithmic support for the identification, discovery, and reuse of models. Researchers have also recognized that the opportunity for reuse significantly increases when models are modularized into composable model components. While many repositories and frameworks for modular modeling have been recently developed, it is important to recognize that without considerable forethought in terms of model architecture, model composability often remains elusive. Even when models are well-characterized and organized in a repository, model users need to perform several tasks before they can successfully reuse these models and components for a specific analysis scenario. These tasks include searching, optionally adapting, composing, integrating and validating models and model components. We will review the literature on each of these tasks and focus on identifying opportunities for further improvement of model reuse support frameworks.
机译:在本文中,我们回顾相关的文献基于计算机的仿真模型的重用系统设计的背景。捕获方面现有的或设想的系统模拟和预测的行为这些系统。从头开始需要大量的时间和努力。如果现有的模型或和努力可以减少模型组件重用,导致这项研究模型的可重用性。必要的任务来检索和重用模型组件库,准备新的模型和模型组件等更适合未来的重用。被小心翼翼地显著增强描述模型,捕捉它意义和意图,以便潜在用户确定该模型是否符合他们的需求。传统上,模型的意义和目的文本文档中被抓获,但最近,语义丰富,使公理化方法使用基于模型的特征介绍了本体,使算法对识别的支持,发现和重用模型。还认识到,重用的机会当模型显著增加模块化的可组合的模型组件。虽然许多存储库和框架模块化建模的最近发展,重要的是认识到没有相当大的深谋远虑的模型体系结构,模型可组合性通常仍然存在难以捉摸。和有组织的存储库,用户需要模型他们可以之前完成几项任务成功地重用这些模型和组件为一个特定的分析场景。包括搜索、选择适应作曲、集成和验证模型和模型组件。这些任务和关注识别模型的进一步改进的机会重用框架的支持。

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