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A modified teaching-learning based optimization for multi-objective optimal power flow problem

delete2014-01-01
delete155
PRE
AI
A
Amin Shabanpour-Haghighi
A
Ali Reza Seifi *
T
Taher Niknam
DOI:10.1016/j.enconman.2013.09.028delete
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Abstract

Abstract

En 中文
In this paper, a modified teaching-learning based optimization algorithm is analyzed to solve the multi-objective optimal power flow problem considering the total fuel cost and total emission of the units. The modified phase of the optimization algorithm utilizes a self-adapting wavelet mutation strategy. Moreover, a fuzzy clustering technique is proposed to avoid extremely large repository size besides a smart population selection for the next iteration. These techniques make the algorithm searching a larger space to find the optimal solutions while speed of the convergence remains good. The IEEE 30-Bus and 57-Bus systems are used to illustrate performance of the proposed algorithm and results are compared with those in literatures. It is verified that the proposed approach has better performance over other techniques. (C) 2013 Elsevier Ltd. All rights reserved.
Keywords:
Optimal power flow
Multi-objective problem
Modified teaching-learning based
optimization
Pareto-optimal set

Journal

Energy Conversion and Management cover
Energy Conversion and Management
IF:
10.9
Papers:
2.0W
Citations:
11.3W

Organization

S
Shiraz University of Technology
Scholars:
1.7K
Papers: 1.9K
Citations: 1.6K
S
Shiraz University
Scholars:
8.1K
Papers: 7.5K
Citations: 7.4K
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