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        <dc:title>Bi-Objective Orienteering: Towards a Dynamic Multi-objective Evolutionary Algorithm</dc:title>
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        <bibo:abstract>We tackle a bi-objective dynamic orienteering problem where customer requests arise as time passes by. The goal is to minimize the tour length traveled by a single delivery vehicle while simultaneously keeping the number of dismissed dynamic customers to a minimum. We propose a dynamic Evolutionary Multi-Objective Algorithm which is grounded on insights gained from a previous series of work on an a-posteriori version of the problem, where all request times are known in advance. In our experiments, we simulate different decision maker strategies and evaluate the development of the Pareto-front approximations on exemplary problem instances. It turns out, that despite severely reduced computational budget and no oracle-knowledge of request times the dynamic EMOA is capable of producing approximations which partially dominate the results of the a-posteriori EMOA and dynamic integer linear programming strategies.</bibo:abstract>
        <bibo:startPage>516–528</bibo:startPage>
        <bibo:endPage>516–528</bibo:endPage>
        <dc:publisher>Springer International Publishing</dc:publisher>
        <bibo:doi rdf:resource="10.1007/978-3-030-12598-1_41" />
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