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Chap 7: Penalty functions (1/2)
Restricting the search to only feasible solutions or imposing very severe penalties makes it difficult to find the schemata that will drive the population toward the optimum. © 2011 SNU CSE Biointelligence Lab
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Chap 7: Penalty functions (2/2)
NFT: a near-feasible threshold the threshold distance from the feasible region. © 2011 SNU CSE Biointelligence Lab
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© 2011 SNU CSE Biointelligence Lab
Chap 8: Decoders © 2011 SNU CSE Biointelligence Lab
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Chap 9: Repair algorithms
Knapsack problem © 2011 SNU CSE Biointelligence Lab
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Chap 10: Constraint-preserving operators
Specialized operators which preserve feasibility of individuals Incorporating problem-specific knowledge. Disadvantages: (1) The problem specific operators must be tailored for a particular application; (2) it is very difficult to provide any formal analysis. The construction of the offspring starts with a selection of an initial city The city with the smallest number of edges selected from the parents. © 2011 SNU CSE Biointelligence Lab
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© 2011 SNU CSE Biointelligence Lab
Chap 11: Other constraint-handling methods - Multi objective optimization methods - Goal - Constraint violation measure - Each individual x is assigned a rank r(x) and violation measure VEGA system A division of the population into subpopulations each subpopulation was responsible for a single objective. Pareto ranking: an individual’s rank corresponds to the number of individuals in the current population. © 2011 SNU CSE Biointelligence Lab
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© 2011 SNU CSE Biointelligence Lab
Chap 11: Other constraint-handling methods - Coevolutionary model approach Idea of handling constraints in a particular order. © 2011 SNU CSE Biointelligence Lab
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© 2011 SNU CSE Biointelligence Lab
Chap 11: Other constraint-handling methods - Segregated genetic algorithm A double penalty strategy Double population may help locate the optimal region faster. © 2011 SNU CSE Biointelligence Lab
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Chap 12: Constraint-satisfaction problems - FOP, CSP, COP
© 2011 SNU CSE Biointelligence Lab
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