自动解读控制系统信号的方法

Krzysztof Wójcik
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引用次数: 0

摘要

文章介绍了使用信号自动分析和解读方法的控制系统概念。文章通过描述三种控制策略来阐述这些问题:简单的闭环控制、使用分类过程的控制和使用信号理解技术的控制。以控制铣床和自动驾驶汽车为例,说明了基于所讨论概念的系统。此外,还更详细地介绍了学习人类运动活动的任务。由于被控对象是人,因此这项任务极其困难。文章表明,可以通过使用分类过程和一般的机器学习方法来实现高级控制过程,即根据当前情况选择控制算法并调整其参数。利用信号理解技术也可以改变算法。这些技术利用对象模型,可以预测控制过程的长期效果。建立以上述方式运行的控制系统的能力具有巨大的现实意义。本文旨在介绍控制过程中使用的自动信号解读方法,并找出与使用这些方法有关的主要问题。主要问题涉及系统对专家知识的获取。为了有效传递这些知识,系统中使用的方法应具有较高的可解释性。这项工作的主要成果就是展示了这一特点的本质。
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Methods of Automatic Interpretation of Signals Used in Control Systems
The article presents the concepts of control systems that use methods of automatic analysis and interpretation of signals. These issues are presented through the description of three control strategies: simple closed-loop control, control using a process of classification, and using a signal understanding technique. The systems based on the discussed concepts are illustrated with examples of controlling a milling machine and an autonomous vehicle. In addition, in more detail, a task of learning human motor activities is described. This task, due to the nature of the controlled object, which is a human being, is extremely difficult. The article shows that the advanced control process, in which the control algorithm is selected and its parameters are adapted to the current situation, may be implemented through the use of the classification process and machine learning methods in general. Changing the algorithm is also possible using signal understanding techniques. These techniques, utilizing models of the objects, allow to predict the long-term effects of the control process. The ability to build control systems that operate in the above manner is of huge practical importance. The aim of this article is to describe the methods of automatic signal interpretation used in control processes and identify the main problems related to their use. The key problems refer to the acquisition of expert knowledge by the system. In order for this knowledge to be effectively transferred, the methods used in the system should have a high level of explainability. Showing the essential nature of this feature is the main outcome of this work.
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