Social spider optimization algorithm for tuning parameters in PD-like Interval Type-2 Fuzzy Logic Controller applied to a parallel robot

Author:

Humaidi Amjad J1ORCID,Najem Huda T1,Al-Dujaili Ayad Q2ORCID,Pereira Daniel A3,Ibraheem Ibraheem Kasim4ORCID,Azar Ahmad Taher5

Affiliation:

1. Control and Systems Engineering Department, University of Technology, Baghdad, Iraq

2. Electrical Engineering Technical College, Middle Technical University, Baghdad, Iraq

3. Federal University of Lavras, Lavras, Brazil

4. Department of Electrical Engineering, College of Engineering, University of Baghdad, Iraq, Baghdad

5. Faculty of Computers and Artificial Intelligence, Benha University, Benha 13518, Egypt

Abstract

This paper presents control design based on an Interval Type-2 Fuzzy Logic (IT2FL) for the trajectory tracking of 3-RRR (3-Revolute-Revolute-Revolute) planar parallel robot. The design of Type-1 Fuzzy Logic Controller (T1FLC) is also considered for the purpose of comparison with the IT2FLC in terms of robustness and trajectory tracking characteristics. The scaling factors in the output and input of T1FL and IT2FL controllers play a vital role in improving the performance of the closed-loop system. However, using trial-and-error procedure for tuning these design parameters is exhaustive and hence an optimization technique is applied to achieve their optimal values and to reach an improved performance. In this study, Social Spider Optimization (SSO) algorithm is proposed as a useful tool to tune the parameters of proportional-derivative (PD) versions of both IT2FLC and T1FLC. Two scenarios, based on two square desired trajectories (with and without disturbance), have been tested to evaluate the tracking performance and robustness characteristics of proposed controllers. The effectiveness of controllers have been verified via numerical simulations based on MATLAB/SIMULINK programming software, which showed the superior of IT2FLC in terms of robustness and tracking errors.

Publisher

SAGE Publications

Subject

Applied Mathematics,Control and Optimization,Instrumentation

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