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The design and implementation of the cortex visualization system

机译:皮质可视化系统的设计与实现

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Cortex has been designed for interactive analysis and display of simulation data generated by CFD applications based on unstructured-grid solvers. Unlike post-processing visualization environments, Cortex is designed to work in co-processing mode with the CFD application. This significantly reduces data storage and data movement requirements for visualization and also allows users to interactively steer the application. Further, Cortex supports high-performance by running on massively parallel computers and workstation clusters.An important goal for Cortex is to provide visualization to a variety of solvers which differ in their solution methodologies and supported flow models. Coupled with the co-processing requirement, this has required the development of a well defined programming interface to the CFD solver that lets the the visualization system communicate efficiently with the solver, and requires minimal programming effort for porting to new solvers. Further, the requirement for targeting multiple solvers and application niches demands that the visualization system be rapidly and easily modifiable. Such flexibility is attained in Cortex by using the high-level, interpreted language Scheme for implementing user-interfaces and high-level visualization functions. By making the Scheme interpreter available from the Cortex text interface, the user can also customize and extend the visualization system.
机译:Cortex设计用于交互式分析和显示基于非结构化网格求解器的CFD应用程序生成的仿真数据。与后处理可视化环境不同,Cortex被设计为与CFD应用程序以协同处理模式工作。这显着减少了用于可视化的数据存储和数据移动要求,并且还允许用户以交互方式操纵应用程序。此外,Cortex通过在大规模并行计算机和工作站集群上运行来支持高性能。Cortex的一个重要目标是为解决方案方法和支持的流模型不同的各种求解器提供可视化功能。结合协同处理需求,这需要开发一个明确定义的CFD求解器编程接口,该接口可使可视化系统与求解器高效通信,并且只需最少的编程工作即可移植到新的求解器。此外,针对多个求解器和应用程序利基的需求要求可视化系统能够快速,轻松地进行修改。在Cortex中,通过使用高级解释语言Scheme来实现用户界面和高级可视化功能,可以实现这种灵活性。通过使Cortex文本界面中的Scheme解释器可用,用户还可以自定义和扩展可视化系统。

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