2008 IEEE Congress on Evolutionary Computation (IEEE World Congress on Computational Intelligence) 2008
DOI: 10.1109/cec.2008.4631138
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Optimisation of cancer chemotherapy schedules using directed intervention crossover approaches

Abstract: This paper describes two directed intervention crossover approaches that are applied to the problem of deriving optimal cancer chemotherapy treatment schedules. Unlike traditional uniform crossover (UC), both the calculated expanding bin (CalEB) method and targeted intervention with stochastic selection (TInSSel) approaches actively choose an intervention level and spread based on the fitness of the parents selected for crossover. Our results indicate that these approaches lead to significant improvements over U… Show more

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Cited by 2 publications
(1 citation statement)
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“…However, the later research confirms that the existence of PBIL surpasses all other existing algorithm for multi-drug, in providing better optimal solution in lesser time period. Moreover, two crossover approaches, the calculated expanding bin (CalEB) method and targeted intervention with stochastic selection (TInSSel) lead to considerable enhancements over Uniform Crossover [3]. On the other hand, in deterministic oscillatory search algorithm fixed interval variable dose (FIVD) happen to be finer than variable interval variable dose (VIVD) [4].…”
Section: Introductionmentioning
confidence: 99%
“…However, the later research confirms that the existence of PBIL surpasses all other existing algorithm for multi-drug, in providing better optimal solution in lesser time period. Moreover, two crossover approaches, the calculated expanding bin (CalEB) method and targeted intervention with stochastic selection (TInSSel) lead to considerable enhancements over Uniform Crossover [3]. On the other hand, in deterministic oscillatory search algorithm fixed interval variable dose (FIVD) happen to be finer than variable interval variable dose (VIVD) [4].…”
Section: Introductionmentioning
confidence: 99%