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Functional Model-Based Design Methodology for Automotive Cyber-Physical Systems

机译:基于功能模型的汽车电子物理系统设计方法

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摘要

The high complexity of cross-domain engineering in combination with the pressure for system innovation, higher quality, time to market, and budget constraints makes it imperative for automotive companies to use integrated engineering methods and tools. Computer engineering tools are mainly focused on a particular domain, and therefore, it is difficult to integrate different tools for system-level analysis. In this paper, a novel multidisciplinary systems engineering methodology and associated design automation algorithms for the complex automotive cyber-physical systems are presented. Rather than starting from the domain-specific architecture/simulation models where most resources are spent, we preemptively target the early design stage at the functional level that determines 75% of an automobile's cost. In our methodology, the marriage of systems engineering principles with high-level synthesis techniques from design automation area results in a functional modeling compiler capable of generating high-fidelity simulation models for the design space exploration and validation of multiple cyber-physical automotive architectures. Using real-world automotive use cases, we demonstrate how functional models capturing integrated cyber-physical aspects are synthesized into high-fidelity multidomain simulation models.
机译:跨域工程的高度复杂性,再加上系统创新的压力,更高的质量,上市时间和预算限制,使得汽车公司必须使用集成的工程方法和工具。计算机工程工具主要集中在特定领域,因此很难集成用于系统级分析的不同工具。在本文中,提出了一种新颖的多学科系统工程方法论以及用于复杂汽车网络物理系统的相关设计自动化算法。与其从花费大量资源的特定领域架构/仿真模型开始,我们抢先将早期设计阶段的目标定位在确定汽车成本75%的功能级别。在我们的方法论中,系统工程原理与设计自动化领域的高级综合技术的结合导致了功能建模编译器的产生,该编译器能够生成高保真仿真模型,用于设计空间探索和多种电子物理汽车架构的验证。使用现实世界中的汽车用例,我们演示了如何将捕获综合网络物理方面的功能模型合成为高保真多域仿真模型。

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