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Fast Micro-Differential Evolution for Topological Active Net Optimization

Authors
Li, Yuan-LongZhan, Zhi-HuiGong, Yue-JiaoZhang, JunLi, YunLi, Qing
Issue Date
Jun-2016
Publisher
IEEE Advancing Technology for Humanity
Keywords
Differential evolution (DE); grid deformation; structure optimization; topological active net (TAN); topological optimization
Citation
IEEE Transactions on Cybernetics, v.46, no.6, pp 1411 - 1423
Pages
13
Indexed
SCI
SCIE
SCOPUS
Journal Title
IEEE Transactions on Cybernetics
Volume
46
Number
6
Start Page
1411
End Page
1423
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/118549
DOI
10.1109/TCYB.2015.2437282
ISSN
2168-2267
2168-2275
Abstract
This paper studies the optimization problem of topological active net (TAN), which is often seen in image segmentation and shape modeling. A TAN is a topological structure containing many nodes, whose positions must be optimized while a predefined topology needs to be maintained. TAN optimization is often time-consuming and even constructing a single solution is hard to do. Such a problem is usually approached by a "best improvement local search" (BILS) algorithm based on deterministic search (DS), which is inefficient because it spends too much efforts in nonpromising probing. In this paper, we propose the use of micro-differential evolution (DE) to replace DS in BILS for improved directional guidance. The resultant algorithm is termed deBILS. Its micro-population efficiently utilizes historical information for potentially promising search directions and hence improves efficiency in probing. Results show that deBILS can probe promising neighborhoods for each node of a TAN. Experimental tests verify that deBILS offers substantially higher search speed and solution quality not only than ordinary BILS, but also the genetic algorithm and scatter search algorithm.
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ERICA 공학대학 (SCHOOL OF ELECTRICAL ENGINEERING)
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