不确定度设计:在实时系统中使用测量不确定度

Peter Ulbrich, Florian Franzmann, F. Scheler, Wolfgang Schröder-Preikschat
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引用次数: 1

摘要

实时系统通常包含各种各样的挑战:例如,控制工程师的目标是尽可能达到最高的控制质量。在这里,一个关键因素是尽量减少测量的不确定性。简单来说,这就是传感器数据的噪声,它对控制有负面影响。虽然测量不确定度在控制理论中得到了很好的处理,但在以时间属性为普遍标准的常见实时体系结构中,测量不确定度通常被忽略。因此,控制工程师和实时专家之间的沟通是单向的,围绕最后期限和采样周期。然而,仔细检查,许多实时特性是由控制工程师期望的测量不确定度衍生出来的。相反,在实践中几乎不可避免的时间变化也可以表示为测量的不确定性。因此,处理测量不确定性应该是一个跨学科的任务:控制系统尊重实际运行时条件,而不是估计它们。同样,实时系统考虑测量的不确定性,而不是盲目地坚持最后期限。在本文中,我们提出了一种以不确定性为中心的方法来利用实时体系结构中的测量不确定性,不仅在设计时,而且在运行时。使用测量不确定度作为显式接口,最大限度地减少了实时专家和控制工程师之间的差距,并促进了模块化和灵活的系统设计。我们的初步结果是有希望的,并且显示了易用性和对现有系统的适用性。
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Design by uncertainty: Towards the use of measurement uncertainty in real-time systems
Real-time systems usually incorporate a wide variety of challenges: A control engineer, for example, aims for the highest possible control quality achievable. Here, one key element is to minimise the uncertainty of the measurements. This, to put it simple, is the noise of sensor data, which has a negative effect on control. Although measurement uncertainty is well treated in control theory, it is usually ignored in common real-time architectures where temporal properties are the prevalent criteria. Consequently, the communication between control engineers and real-time specialists is rather one way, revolving around deadlines and sampling periods. However, on closer examination, many real-time properties are derived from the measurement uncertainty aspired by the control engineer. Conversely, temporal variations, virtually inevitable in practice, can be represented as measurement uncertainty as well. Tackling the measurement uncertainty should therefore be an interdisciplinary task: The control system respects the actual run-time conditions instead of estimating them. Likewise, the real-time system considers measurement uncertainty rather than blindly sticking to deadlines. In this paper we present an uncertainty-centric approach to leverage measurement uncertainty in real-time architectures, not only at design time but also at run-time. Using measurement uncertainty as an explicit interface minimises the gap between real-time specialists and control engineers and facilitates a modular and flexible system design. Our preliminary results are promising and show the ease of use and the applicability to existing systems.
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