Volume 1: Advances in Control Design Methods; Advances in Nonlinear Control; Advances in Robotics; Assistive and Rehabilitation 2018
DOI: 10.1115/dscc2018-8935
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Multi-Objective Optimal Design of Four-Parameter PID Controls

Abstract: This paper presents a multi-objective optimal PID (Proportional-Integral-Derivative) controller with the derivative filter factor as the fourth design parameter. The complete design of the PID controller should involve tuning four parameters instead of three. However, most of the research papers consider only three parameters. The fourth parameter, the filter factor, is assigned to a default value or selected experimentally. In all cases, the choice of this factor filter will alter the closed-loop response’s c… Show more

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Cited by 4 publications
(9 citation statements)
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“…Following this approach, we will have five parameters to design, namely, k p , k i , k d , 𝜀 1 , and 𝜀 2 . This problem has been solved in Sardahi and Boker [19] with 𝜀 1 = 1 using multi-objective optimization technique. In Sardahi and Boker [19], the problem was solved in one shot by optimizing the controller parameters to achieve a number of conflicting objectives.…”
Section: Three Time Scales Designmentioning
confidence: 99%
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“…Following this approach, we will have five parameters to design, namely, k p , k i , k d , 𝜀 1 , and 𝜀 2 . This problem has been solved in Sardahi and Boker [19] with 𝜀 1 = 1 using multi-objective optimization technique. In Sardahi and Boker [19], the problem was solved in one shot by optimizing the controller parameters to achieve a number of conflicting objectives.…”
Section: Three Time Scales Designmentioning
confidence: 99%
“…The term dependent on e s 0 in (19) is regarded as bias since e s 0 is a 'frozen' parameter in this time scale. Consequently, to remove this bias from ( 18)-( 19), we employ…”
Section: Three Time Scales Designmentioning
confidence: 99%
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“…However, the computational cost can be justified if a more accurate solution is desired, and the optimization is conducted offline. The most widely used multi-objective optimization algorithm is the NSGA-II (Sardahi, Y. and Boker, A., 2018). It yields a better Pareto front as compared to SPEA2 (strength Pareto evolutionary algorithm) and PESA-II (Pareto Envelope based Selection Algorithm).…”
Section: Multi-objective Optimizationmentioning
confidence: 99%