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Computer Architectures to Close the Loop in Real-time Optimization

机译:计算机体系结构在实时优化中关闭循环

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摘要

© 2015 IEEE.Many modern control, automation, signal processing and machine learning applications rely on solving a sequence of optimization problems, which are updated with measurements of a real system that evolves in time. The solutions of each of these optimization problems are then used to make decisions, which may be followed by changing some parameters of the physical system, thereby resulting in a feedback loop between the computing and the physical system. Real-time optimization is not the same as fast optimization, due to the fact that the computation is affected by an uncertain system that evolves in time. The suitability of a design should therefore not be judged from the optimality of a single optimization problem, but based on the evolution of the entire cyber-physical system. The algorithms and hardware used for solving a single optimization problem in the office might therefore be far from ideal when solving a sequence of real-time optimization problems. Instead of there being a single, optimal design, one has to trade-off a number of objectives, including performance, robustness, energy usage, size and cost. We therefore provide here a tutorial introduction to some of the questions and implementation issues that arise in real-time optimization applications. We will concentrate on some of the decisions that have to be made when designing the computing architecture and algorithm and argue that the choice of one informs the other.
机译:©2015 IEEE。许多现代控制,自动化,信号处理和机器学习应用程序都依赖于解决一系列优化问题,这些问题会随着实时系统的变化而更新。这些优化问题中的每一个的解决方案然后用于做出决策,随后可以通过更改物理系统的某些参数来进行决策,从而导致计算与物理系统之间形成反馈循环。实时优化与快速优化不同,这是由于计算受时间演变的不确定系统影响。因此,不应根据单个优化问题的最优性来判断设计的适用性,而应基于整个网络物理系统的发展。因此,在解决一系列实时优化问题时,用于解决办公室中单个优化问题的算法和硬件可能远非理想。代替单一的最佳设计,必须权衡许多目标,包括性能,耐用性,能源使用,尺寸和成本。因此,我们在此处提供有关实时优化应用程序中出现的一些问题和实现问题的教程介绍。在设计计算体系结构和算法时,我们将集中讨论一些必须做出的决定,并认为选择一个会影响另一个。

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