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Using an the intelligent self-modifier of probability of section approach to study the revenue influence of the pricing scheme of recyclable items in a green vehicle routing problem

机译:使用截面概率的智能自我修改器方法研究绿色车辆路径问题中可回收物品定价方案的收益影响

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摘要

In this article, a hybrid meta-heuristic algorithm is applied to solve a green vehicle routing problem with respect to economic aspects. In this research, a transportation model will be studied in which the fleet operates with eco-friendly fuels in order to collect used products in different nodes. By implementing value-added processes, the firm can sell products and gain profit. However, using alternative fuels causes some limitations because of lack of alternative fuel stations. These limitations usually affect the travel distance range of vehicles and, consecutively, route selection to serve desired customers. A proper formulation for this type of problem could be applicable to manage imposed costs of transportation pertaining to alternative fuels and related issues. To reach this goal, the proposed model represents the revenue and purchasing price of used products in the output. These results are attained by using an improved Simulated Annealing (SA) algorithm. The self-modifier of probability of section approach (SMPSA) featured with a SA algorithm can solve the model in less time compared with the classic SA algorithm. In addition, a heuristic algorithm is used to generate each initial solution with higher quality. Finally, the results and running time of the proposed algorithm are compared with the exact method and the SA algorithm without the SMPSA. Then the results are discussed.
机译:本文将混合元启发式算法应用于解决经济方面的绿色车辆路径问题。在这项研究中,将研究一种运输模型,在该模型中,车队使用环保燃料来收集不同节点中的废品。通过实施增值流程,公司可以销售产品并获得利润。然而,由于缺乏替代燃料站,使用替代燃料引起一些限制。这些限制通常会影响车辆的行驶距离范围,并依次影响路线选择以服务期望的客户。针对此类问题的适当表述可能适用于管理与替代燃料和相关问题有关的规定的运输成本。为了实现此目标,建议的模型代表了产出中二手产品的收入和购买价格。这些结果是通过使用改进的模拟退火(SA)算法获得的。与经典SA算法相比,具有SA算法的截面概率自修正器(SMPSA)可以在更短的时间内解决模型。另外,使用启发式算法生成具有更高质量的每个初始解。最后,将所提算法的结果和运行时间与精确方法和没有SMPSA的SA算法进行了比较。然后讨论结果。

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