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Risk-Averse Anticipation for Dynamic Vehicle Routing

机译:动态车辆路径规避风险的预期

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In the field of dynamic vehicle routing, the importance to integrate stochastic information about possible future events in current decision making increases. Integration is achieved by anticipatory solution approaches, often based on approximate dynamic programming (ADP). ADP methods estimate the expected mean values of future outcomes. In many cases, decision makers are risk-averse, meaning that they avoid "risky" decisions with highly volatile outcomes. Current ADP methods in the field of dynamic vehicle routing are not able to integrate risk-aversion. In this paper, we adapt a recently proposed ADP method explicitly considering risk-aversion to a dynamic vehicle routing problem with stochastic requests. We analyze how risk-aversion impacts solutions' quality and variance. We show that a mild risk-aversion may even improve the risk-neutral objective.
机译:在动态车辆路线选择领域,在当前决策中整合有关可能的未来事件的随机信息的重要性日益增加。集成通常是基于近似动态编程(ADP)的预期解决方案来实现的。 ADP方法估计未来结果的预期平均值。在许多情况下,决策者是规避风险的,这意味着他们避免了具有高波动性结果的“风险性”决策。动态车辆路线选择领域中的当前ADP方法无法集成风险规避。在本文中,我们采用了最近提出的ADP方法,明确考虑了风险规避,以适应具有随机请求的动态车辆路径问题。我们分析了规避风险如何影响解决方案的质量和差异。我们表明,轻度的风险规避甚至可以改善风险中立的目标。

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