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《自动化仪表与过程控制》课程学习资料:APPENDIX IV OPTIMAL CONTROL THEORY
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《自动化仪表与过程控制》课程学习资料:Introduction to Modern Control Theory
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《自动化仪表与过程控制》课程学习资料:Mathematical Control Theory
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《自动化仪表与过程控制》课程学习资料:Feedback Control
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《自动化仪表与过程控制》课程学习资料:Essential Control Corretion
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智能控制是自动控制发展的高级阶段,是人工智能、控制论、系统论和信息论等多种学科的高度综合 与集成,是一门新的交叉前沿学科。从广义上讲,智能控制是研究对复杂的不确定性被控对象(过程)采 用人工智能的方法有效地克服系统的不确定性,使系统从无序到期望的有序状态转移的方法及其规律 智能控制已经出现了相当长的一段时间,并且取得了初步的应用成果
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1 Introduction 2 Deterministic Dynamic Programming and Viscosity Solutions 3 Stochastic Control 3.1 Some Probability Theory 3.2 Controlled State Space Models 3.3 Filtering 3.4 Dynamic Programming - Case I : Complete State Information 3.5 Dynamic Programming - Case II : Partial State Information 3.6 Two Continuous Time Problems 4 Robust Control 4.1 Introduction and Background 4.2 The Standard Problem of H∞ Control 4.3 The Solution for Linear Systems 4.4 Risk-Sensitive Stochastic Control and Robustness 5 Optimal Feedback Control of Quantum Systems 5.1 Preliminaries 5.2 The Feedback Control Problem 5.3 Conditional Dynamics 5.4 Optimal Control 5.5 Appendix: Formulas for the Two-State System with Feedback Example 6 Optimal Risk-Sensitive Feedback Control of Quantum Systems 6.1 System Model 6.2 Risk-Neutral Optimal Control 6.3 Risk-Sensitive Optimal Control 6.4 Control of a Two Level Atom 6.5 Control of a Trapped Atom
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System compensation is the process of designing a controller that will produce an acceptable transient response while maintaining a desired steady-state accuracy .These two design objectives are conflicting in most systems ,since small errors imply high gains reduce system stability and may even drive the system unstable .Compensation may be thought of as the process of increasing the stability of a system without reducing its accuracy below minimum acceptable standards
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《自动化仪表与过程控制》课程学习资料:A Comparison of Robustness_Fuzzy Logic,PID, Sliding Mode Control
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《自动化仪表与过程控制》课程学习资料(工业控制系统设计标准)电工学重要公式实用手册(PDF电子书)
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