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The rough set based approach to generic routing problems: case of reverse logistics supplier selection

机译:基于粗糙集的通用路由问题方法:逆向物流供应商选择案例

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摘要

In recent years, Reverse Logistics (RL) has been touted as one of the strategies of improving organization performance and generating a competitive advantage. In RL, the generic routing problem has become a focus since it provides a great flexibility in modeling, e.g., selection of suppliers by using a node as a supplier candidate in a network. To date, complicated networks make decision makers hard to search a desired routine. In addition, the traditional network defines and resolves such a problem only at one soot. The solution cannot be acquired from multiple perspectives like minimal cost, minimal delivery time, maximal reliability, and optimal "3Rs"-reduce, reuse, and recycle. In this study, rough set theory is applied to reduce complexity of the RL data sets and induct decision rules. Through incorporating the decision rules, the generic label correcting algorithm is used to solve generic routing problems by integrating various operators and comparators in the GLC algorithm. Consequently, the desired RL suppliers are selected.
机译:近年来,反向物流(RL)被认为是提高组织绩效和产生竞争优势的策略之一。在RL中,通用路由问题已成为关注的焦点,因为它在建模方面提供了极大的灵活性,例如,通过使用节点作为网络中的供应商候选者来选择供应商。迄今为止,复杂的网络使决策者难以搜索所需的例程。另外,传统网络仅一次解决定义和解决这种问题。无法从多个角度(例如最小的成本,最小的交付时间,最大的可靠性以及最佳的“ 3R”)(减少,重用和回收)获取解决方案。在这项研究中,应用粗糙集理论来降低RL数据集和归纳决策规则的复杂性。通过合并决策规则,通用标签校正算法通过在GLC算法中集成各种运算符和比较器来解决通用路由问题。因此,选择了所需的RL供应商。

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