Behavioral model composition in simulation-based design

Rajarishi Sinha, C. Paredis, P. Khosla
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引用次数: 11

Abstract

We present a simulation and design framework for simultaneously designing and modeling electromechanical systems. By instantiating component objects and connecting them to each other via ports, a designer can configure complex systems. This configuration information is then used to automatically generate a corresponding system-level simulation model. The building block of our framework is the component object. It encapsulates design data and behavioral models and their inter-relationships. Component objects are composed into systems by connecting their ports. However, when converting a system configuration into a corresponding simulation model, the corresponding models for the component objects do not capture the physical phenomena at the component interfaces the interactions. To obtain an accurate composition, the interaction dynamics must also be captured in behavioral models. In this paper, we introduce the concept of an interaction model that captures the dynamics of the interaction. When two ports are connected, there is an intended interaction between the two components. For composition of component objects to work, an interaction model must be introduced between each pair of connected behavioral models. We illustrate these ideas using an example.
基于仿真的设计中的行为模型组合
我们提出了一个模拟和设计框架,用于同时设计和模拟机电系统。通过实例化组件对象并通过端口相互连接,设计人员可以配置复杂的系统。然后,这些配置信息将用于自动生成相应的系统级仿真模型。组件对象是我们框架的组成部分。它封装了设计数据和行为模型及其相互关系。组件对象通过连接端口组成系统。然而,在将系统配置转换为相应的仿真模型时,组件对象的相应模型并不能捕捉到组件接口处的物理现象。为了获得准确的组合,还必须在行为模型中捕捉交互动态。在本文中,我们引入了能捕捉交互动态的交互模型概念。当两个端口相连时,两个组件之间就会产生预期的交互。要使组件对象的组合发挥作用,就必须在每一对相连的行为模型之间引入交互模型。我们用一个例子来说明这些观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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