实时知识控制的计算机体系结构

H. K. Eldeib
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引用次数: 2

摘要

最近,人们对基于知识的控制系统的实时实现越来越感兴趣。这类系统通常由实现控制算法的实时控制系统和监控知识系统组成,该系统监测控制系统的输入和输出,以检测其性能的任何退化。如果发现性能正在恶化,基于知识的系统会尝试重新配置控制,以恢复其性能或保持安全运行。控制算法的实现通常涉及数值计算,而基于知识的系统的推理则涉及符号计算。传统的符号计算系统需要大量的计算量,这限制了基于知识的控制的实时实现。在本文中,我们回顾了一些使用特殊计算机体系结构实现基于知识的控制问题的解决方案。这些方法包括使用双重处理;从数值计算中分离符号计算。这包括使用两台不同的电脑;例如Lisp机和Vax,使用带有双68020处理器板的Lisp机进行数值计算,以及使用带有双数字信号处理板的IBM PC-AT(德州仪器的TMS32010)。本文还研究了一些基于分布式计算机体系结构的解决方案,用于控制任务和/或基于知识的推理任务。将讨论每种执行方法的报告绩效和局限性以及可能的未来方向。
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Computer Architectures for Real-Time Knowledge-Based Control
There has been an increasing interest recently in real-time implementations of knowledge-based control systems. Such systems typically consist of a real-time control system that implements a control algorithm and a supervisory knowledge-based system that monitors the inputs and outputs of the control system to detect any degradation in its performance. If the performance is found to be deteriorating the knowledge-based system attempts to reconfigure the control in order to restore its performance or to maintain safe operation. Implementation of the control algorithm usually involves numerical computing while reasoning performed by the knowledge-based system involves symbolic computing. Real-time implementations of knowledge-based control have been limited by the intensive computational needs required by traditional symbolic computing systems. In this paper we review a number of solutions to the problems of implementing knowledge based contol that use special computer architectures. These approaches include the use of dual-processing; separating symbolic computing from numerical computing. This includes using two different computers; such as a Lisp machine and a Vax, using a Lisp machine with a dual 68020 processor board for numerical computation, and by using an IBM PC-AT with a dual digital signal processing board (Texas Instrument's TMS32010). The paper also examines a number of proposed solutions based on distributed computer architectures for control tasks and/or for the knowledge-based reasoning task. Reported performance and limitations of each approach to implementation and possible future directions for will be discussed.
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