Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller

Research output: Contribution to journalArticleResearchpeer review

Authors

External Research Organisations

  • University of Twente
View graph of relations

Details

Original languageEnglish
Article number103664
JournalJournal of Building Engineering
Volume46
Publication statusPublished - Apr 2022
Externally publishedYes

Abstract

Control algorithms are the most crucial aspects in effective control of civil structures exposed to earthquake forces. Recently, adaptive intelligent control algorithms are evolving to be a viable substitute strategy for conventional model-based control algorithms. One of the most recent developments, known as the Brain Emotional Learning Based Intelligent Controller (BELBIC), has caught the attention of scientists as a model-free adaptive control system. It possesses appealing capabilities for dealing with nonlinearities and uncertainties in control frameworks. The modern semi-actively controlled civil structures have a highly uncertain and nonlinear nature following severe disturbances. As a result, these structures require real-time (online) robust control actions towards changing conditions, which the controllers with rigid settings cannot adapt. This study intends to overcome this issue in two ways: an online self-tuning brain emotional learning-based intelligent controller (ST-BELBIC) is formulated. Then its capabilities in improving the performance of cascaded controller in attenuating seismic vibrations of a three-story scaled building structure are validated. In this case, the central control unit BELBIC is based on sensory inputs (SI) and emotional cues (reward) signals. The main contribution of the proposed controller is a self-attuned version of the standard BELBIC that uses the benefits of a first-order Sugano fuzzy inference system (FIS) to adapt its parameters online. The proposed control methodology can be a promising model-free controller in terms of online tuning, simplicity of configuration, ease of applicability, less operational time, and neutralizing nonlinearities. The simulation affirms that the proposed controller compared with conventional LQR and intelligent Fuzzy tuned PID (FT-PID) controllers shows a superior performance regarding attenuating seismic responses of the building and can also improve the performance of cascaded FT-PID controller.

Keywords

    Fuzzy logic, Fuzzy tuned PID, Self-tuned brain emotional learning-based intelligent controller, Semi-active vibration control

ASJC Scopus subject areas

Cite this

Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller. / Saeed, Muhammad Usman; Sun, Zuoyu; Elias, Said.
In: Journal of Building Engineering, Vol. 46, 103664, 04.2022.

Research output: Contribution to journalArticleResearchpeer review

Saeed MU, Sun Z, Elias S. Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller. Journal of Building Engineering. 2022 Apr;46:103664. doi: 10.1016/j.jobe.2021.103664
Saeed, Muhammad Usman ; Sun, Zuoyu ; Elias, Said. / Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller. In: Journal of Building Engineering. 2022 ; Vol. 46.
Download
@article{9fedf21237514db4897442e34058f7d6,
title = "Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller",
abstract = "Control algorithms are the most crucial aspects in effective control of civil structures exposed to earthquake forces. Recently, adaptive intelligent control algorithms are evolving to be a viable substitute strategy for conventional model-based control algorithms. One of the most recent developments, known as the Brain Emotional Learning Based Intelligent Controller (BELBIC), has caught the attention of scientists as a model-free adaptive control system. It possesses appealing capabilities for dealing with nonlinearities and uncertainties in control frameworks. The modern semi-actively controlled civil structures have a highly uncertain and nonlinear nature following severe disturbances. As a result, these structures require real-time (online) robust control actions towards changing conditions, which the controllers with rigid settings cannot adapt. This study intends to overcome this issue in two ways: an online self-tuning brain emotional learning-based intelligent controller (ST-BELBIC) is formulated. Then its capabilities in improving the performance of cascaded controller in attenuating seismic vibrations of a three-story scaled building structure are validated. In this case, the central control unit BELBIC is based on sensory inputs (SI) and emotional cues (reward) signals. The main contribution of the proposed controller is a self-attuned version of the standard BELBIC that uses the benefits of a first-order Sugano fuzzy inference system (FIS) to adapt its parameters online. The proposed control methodology can be a promising model-free controller in terms of online tuning, simplicity of configuration, ease of applicability, less operational time, and neutralizing nonlinearities. The simulation affirms that the proposed controller compared with conventional LQR and intelligent Fuzzy tuned PID (FT-PID) controllers shows a superior performance regarding attenuating seismic responses of the building and can also improve the performance of cascaded FT-PID controller.",
keywords = "Fuzzy logic, Fuzzy tuned PID, Self-tuned brain emotional learning-based intelligent controller, Semi-active vibration control",
author = "Saeed, {Muhammad Usman} and Zuoyu Sun and Said Elias",
note = "Publisher Copyright: {\textcopyright} 2021 Elsevier Ltd",
year = "2022",
month = apr,
doi = "10.1016/j.jobe.2021.103664",
language = "English",
volume = "46",

}

Download

TY - JOUR

T1 - Semi-active vibration control of building structure by Self Tuned Brain Emotional Learning Based Intelligent Controller

AU - Saeed, Muhammad Usman

AU - Sun, Zuoyu

AU - Elias, Said

N1 - Publisher Copyright: © 2021 Elsevier Ltd

PY - 2022/4

Y1 - 2022/4

N2 - Control algorithms are the most crucial aspects in effective control of civil structures exposed to earthquake forces. Recently, adaptive intelligent control algorithms are evolving to be a viable substitute strategy for conventional model-based control algorithms. One of the most recent developments, known as the Brain Emotional Learning Based Intelligent Controller (BELBIC), has caught the attention of scientists as a model-free adaptive control system. It possesses appealing capabilities for dealing with nonlinearities and uncertainties in control frameworks. The modern semi-actively controlled civil structures have a highly uncertain and nonlinear nature following severe disturbances. As a result, these structures require real-time (online) robust control actions towards changing conditions, which the controllers with rigid settings cannot adapt. This study intends to overcome this issue in two ways: an online self-tuning brain emotional learning-based intelligent controller (ST-BELBIC) is formulated. Then its capabilities in improving the performance of cascaded controller in attenuating seismic vibrations of a three-story scaled building structure are validated. In this case, the central control unit BELBIC is based on sensory inputs (SI) and emotional cues (reward) signals. The main contribution of the proposed controller is a self-attuned version of the standard BELBIC that uses the benefits of a first-order Sugano fuzzy inference system (FIS) to adapt its parameters online. The proposed control methodology can be a promising model-free controller in terms of online tuning, simplicity of configuration, ease of applicability, less operational time, and neutralizing nonlinearities. The simulation affirms that the proposed controller compared with conventional LQR and intelligent Fuzzy tuned PID (FT-PID) controllers shows a superior performance regarding attenuating seismic responses of the building and can also improve the performance of cascaded FT-PID controller.

AB - Control algorithms are the most crucial aspects in effective control of civil structures exposed to earthquake forces. Recently, adaptive intelligent control algorithms are evolving to be a viable substitute strategy for conventional model-based control algorithms. One of the most recent developments, known as the Brain Emotional Learning Based Intelligent Controller (BELBIC), has caught the attention of scientists as a model-free adaptive control system. It possesses appealing capabilities for dealing with nonlinearities and uncertainties in control frameworks. The modern semi-actively controlled civil structures have a highly uncertain and nonlinear nature following severe disturbances. As a result, these structures require real-time (online) robust control actions towards changing conditions, which the controllers with rigid settings cannot adapt. This study intends to overcome this issue in two ways: an online self-tuning brain emotional learning-based intelligent controller (ST-BELBIC) is formulated. Then its capabilities in improving the performance of cascaded controller in attenuating seismic vibrations of a three-story scaled building structure are validated. In this case, the central control unit BELBIC is based on sensory inputs (SI) and emotional cues (reward) signals. The main contribution of the proposed controller is a self-attuned version of the standard BELBIC that uses the benefits of a first-order Sugano fuzzy inference system (FIS) to adapt its parameters online. The proposed control methodology can be a promising model-free controller in terms of online tuning, simplicity of configuration, ease of applicability, less operational time, and neutralizing nonlinearities. The simulation affirms that the proposed controller compared with conventional LQR and intelligent Fuzzy tuned PID (FT-PID) controllers shows a superior performance regarding attenuating seismic responses of the building and can also improve the performance of cascaded FT-PID controller.

KW - Fuzzy logic

KW - Fuzzy tuned PID

KW - Self-tuned brain emotional learning-based intelligent controller

KW - Semi-active vibration control

UR - http://www.scopus.com/inward/record.url?scp=85120410893&partnerID=8YFLogxK

U2 - 10.1016/j.jobe.2021.103664

DO - 10.1016/j.jobe.2021.103664

M3 - Article

VL - 46

JO - Journal of Building Engineering

JF - Journal of Building Engineering

M1 - 103664

ER -

By the same author(s)