DocumentCode
86999
Title
Cognition-Driven Formulation of Space Mapping for Equal-Ripple Optimization of Microwave Filters
Author
Chao Zhang ; Feng Feng ; Gongal-Reddy, Venu-Madhav-Reddy ; Qi Jun Zhang ; Bandler, John W.
Author_Institution
Dept. of Electron., Carleton Univ., Ottawa, ON, Canada
Volume
63
Issue
7
fYear
2015
fDate
Jul-15
Firstpage
2154
Lastpage
2165
Abstract
Space mapping is a recognized method for speeding up electromagnetic (EM) optimization. Existing space-mapping approaches belong to the class of surrogate-based optimization methods. This paper proposes a cognition-driven formulation of space mapping that does not require explicit surrogates. The proposed method is applied to EM-based filter optimization. The new technique utilizes two sets of intermediate feature space parameters, including feature frequency parameters and ripple height parameters. The design variables are mapped to the feature frequency parameters, which are further mapped to the ripple height parameters. By formulating the cognition-driven optimization directly in the feature space, our method increases optimization efficiency and the ability to avoid being trapped in local minima. The technique is suitable for design of filters with equal-ripple responses. It is illustrated by two microwave filter examples.
Keywords
microwave filters; optimisation; EM-based filter optimization; cognition driven formulation; electromagnetic optimization; equal ripple optimization; feature frequency parameters; intermediate feature space parameters; microwave filters; ripple height parameters; space mapping; surrogate-based optimization; Computational modeling; Filtering theory; Integrated circuit modeling; Microwave filters; Optimization; Passband; Cognition-driven design; computer-aided design (CAD); electromagnetic (EM) optimization; microwave filters; modeling; space mapping (SM);
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2015.2431675
Filename
7116620
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