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- W2045753467 abstract "Multilevel image thresholding is a very important image processing technique that is used as a basis for image segmentation and further higher level processing. However, the required computational time for exhaustive search grows exponentially with the number of desired thresholds. Swarm intelligence metaheuristics are well known as successful and efficient optimization methods for intractable problems. In this paper, we adjusted one of the latest swarm intelligence algorithms, the bat algorithm, for the multilevel image thresholding problem. The results of testing on standard benchmark images show that the bat algorithm is comparable with other state-of-the-art algorithms. We improved standard bat algorithm, where our modifications add some elements from the differential evolution and from the artificial bee colony algorithm. Our new proposed improved bat algorithm proved to be better than five other state-of-the-art algorithms, improving quality of results in all cases and significantly improving convergence speed." @default.
- W2045753467 created "2016-06-24" @default.
- W2045753467 creator A5035328178 @default.
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- W2045753467 date "2014-01-01" @default.
- W2045753467 modified "2023-10-14" @default.
- W2045753467 title "Improved Bat Algorithm Applied to Multilevel Image Thresholding" @default.
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- W2045753467 doi "https://doi.org/10.1155/2014/176718" @default.
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