C++ Dynamic Cast in Autonomous Space Systems

D. Dechev, R. Mahapatra, B. Stroustrup, D. Wagner
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Abstract

The dynamic cast operation allows flexibility in the design and use of data management facilities in object- oriented programs. Dynamic cast has an important role in the implementation of the data management services (DMS) of the mission data system project (MDS), the jet propulsion laboratory's experimental work for providing a state-based and goal-oriented unified architecture for testing and development of mission software. DMS is responsible for the storage and transport of control and scientific data in a remote autonomous spacecraft. Like similar operators in other languages, the C++ dynamic cast operator does not provide the timing guarantees needed for hard real-time embedded systems. In a recent study, Gibbs and Stroustrup (G&S) devised a dynamic cast implementation strategy that guarantees fast constant-time performance. This paper presents the definition and application of a co-simulation framework to formally verify and evaluate the G&S fast dynamic casting scheme and its applicability in the mission data system DMS application. We describe the systematic process of model-based simulation and analysis that has lead to performance improvement of the G&S algorithm's heuristics by about a factor of 2.
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自主空间系统中的c++动态转换
动态转换操作允许在面向对象程序中灵活地设计和使用数据管理工具。动态cast在任务数据系统项目(MDS)数据管理服务(DMS)的实施中具有重要作用,为任务软件的测试和开发提供了一个基于状态和面向目标的统一架构。DMS负责远程自主航天器的控制和科学数据的存储和传输。与其他语言中的类似操作符一样,c++动态强制转换操作符不提供硬实时嵌入式系统所需的时间保证。在最近的一项研究中,Gibbs和Stroustrup (G&S)设计了一种动态铸造实现策略,以保证快速的恒定时间性能。本文提出了一个联合仿真框架的定义和应用,以正式验证和评估G&S快速动态铸造方案及其在任务数据系统DMS应用中的适用性。我们描述了基于模型的仿真和分析的系统过程,该过程使G&S算法的启发式性能提高了约2倍。
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