Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/91067
Title: Memetic gradient search
Authors: Li, Boyang
Ong, Yew Soon
Le, Minh Nghia
Goh, Chi Keong
Issue Date: 2008
Source: Li, B., Ong, Y. S., Le, M. N., & Goh, C. K. (2008). Memetic gradient search. IEEE Congress on Evolutionary Computation (2008:Hong Kong)
Conference: IEEE Congress on Evolutionary Computation (2008 : Hong Kong)
Abstract: This paper reviews the different gradient-based schemes and the sources of gradient, their availability, precision and computational complexity, and explores the benefits of using gradient information within a memetic framework in the context of continuous parameter optimization, which is labeled here as Memetic Gradient Search. In particular, we considered a quasi-Newton method with analytical gradient and finite differencing, as well as simultaneous perturbation stochastic approximation, used as the local searches. Empirical study on the impact of using gradient information showed that Memetic Gradient Search outperformed the traditional GA and analytical, precise gradient brings considerable benefit to gradient-based local search (LS) schemes. Though gradient-based searches can sometimes get trapped in local optima, memetic gradient searches were still able to converge faster than the conventional GA.
URI: https://hdl.handle.net/10356/91067
http://hdl.handle.net/10220/4506
Schools: School of Computer Engineering 
Research Centres: Emerging Research Lab 
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Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:SCSE Conference Papers

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