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Predictive Hold with Error Correction Techniques that Maintain Signal Continuity in Co-Simulation Environments

机译:预测持有纠错技术,可在共模环境中维护信号连续性

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The combination of increasing performance demands, increasing system complexity, and the need for reduced program development schedule and budget costs in the aerospace industry is driving engineers to increasingly rely upon modeling, simulation, and analysis (MS&A) in the platform development cycle. One approach to ensuring that such integrated system simulations remain computationally tractable is co-simulation utilizing technology found in commercially available packages, such as PC Krause and Associates, Inc.'s (PCKA's) Distributed Heterogeneous Simulation (DHS)/FastSim software. In such co-simulation environments, dynamic models are executed in independent model spaces, with coupling between subsystems achieved by exchanging a minimal set of required data typically found at subsystem boundaries. In such environments, an important challenge that must be overcome is the estimation of communicated signals whose true values may only be updated at some reduced rate compared to the model in which they are used. This estimation has traditionally been achieved with simple sample/hold techniques, wherein the communicated signals are sampled at the discrete communication intervals, and interpolation (most often utilizing polynomial functions) is used to reconstruct the signal in between samples. While conceptually simple, this approach often gives rise to step discontinuities in the communicated signals due to the difference between the interpolating function used and the signal itself. In certain models, such step discontinuities are undesirable, as they may give rise to spurious high-frequency dynamics, resulting in slower simulation speeds and potentially inaccurate solutions. In this paper, the problem of signal estimation and reconstruction is recast in a generalized framework based on notions of prediction and error correction. Abstracting the problem in this form allows for describing different signal estimation schemes in a unified manner, as application of different prediction and error correction formulas, including the sample/hold techniques commonly used in co-simulation tools. Based on this framework, a new prediction and error correction scheme is derived which allows for maintaining various levels of continuity in the estimated signal and in its derivatives, ensuring that smoothness is retained and step discontinuities associated with traditional sample/hold approaches are eliminated. This paper presents a detailed comparison of the proposed technique against traditional approaches, whereby it is shown that the new method yields more desirable performance under certain conditions. Ultimately, the generalized framework and the proposed approach put forth in this paper provide engineers engaged in the MS&A of aerospace platforms additional configuration flexibility to achieve meaningful results.
机译:增长的性能需求,增加系统复杂性的结合,以及需要在航空业减少项目开发进度和预算成本推动工程师们越来越多地依赖于平台的开发周期建模,仿真和分析(MS&A)。一种方法,以确保这些集成系统仿真仍然易于计算是利用技术协同仿真的商业可用的软件包,如PC克劳斯和Associates公司的(PCKA的)分布式异构仿真(DHS)/ FastSim软件发现。在这样的协同仿真的环境中,动态模型是在无关的模型空间中执行,以通过交换最小的一组典型地发现在子系统边界所需的数据的取得子系统之间的耦合。在这样的环境中,必须克服的一个重要挑战是传送的信号,其真实值可以仅在一些降低的速率被更新相比,它们所使用的模型的估计。这个估算传统上与简单采样/保持的技术,其特征在于,所传送的信号在离散的通信间隔采样,和内插(通常利用多项式函数)来实现用于在样品之间以重建信号。虽然概念上简单,这种方法往往引起在传送的信号的不连续步骤由于所使用的插值函数和信号本身之间的差。在某些模型中,这样的不连续性步骤是不希望的,因为它们可能会引起寄生高频动力学,从而导致较慢的模拟速度和可能不准确的解决方案。在本文中,信号估计和重建的问题在基于预测和误差校正的概念的一般化框架重铸。提取这种形式的问题允许以统一的方式描述不同信号估计方案,作为不同的预测和误差校正公式,包括在协同仿真工具中常用的采样/保持技术的应用。基于此框架下,一个新的预测和误差校正方案被衍生,其允许维持在所估计的信号,并在其衍生物连续性各级,确保平滑性被保留,并与传统采样/保持方法相关联的步骤的不连续性被消除。本文呈现针对传统方法所提出的技术,由此示出的详细比较,该方法的产率在一定条件下更希望的性能。最终,广义框架和所提出的方法提出本文提供工程师从事航天平台的MS&A额外的配置灵活性,以取得有意义的成果。

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