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作 者:李朝辉 周声海[2] 万国华[1] LI Zhaohui;ZHOU Shenghai;WAN Guohua(Antai College of Economics and Management,Shanghai Jiao Tong University,Shanghai 200030,China;School of Business,Central South University,Changsha 410083,China)
机构地区:[1]上海交通大学安泰经济与管理学院,上海200030 [2]中南大学商学院,长沙410083
出 处:《系统管理学报》2022年第6期1075-1083,共9页Journal of Systems & Management
基 金:国家自然科学基金(创新群体)项目(71421002);上海市“优秀学术带头人计划”项目(16XD1401700)。
摘 要:以某大型消费电子品制造商的产品跨境配送和补货为背景,研究跨境分销供应链中的补货管理和库存优化问题。该分销供应链由国内中央仓、海外地区分销仓(或国家分销仓,简称本地仓)和本地零售商组成。其中:通过地区分销仓可以直接给零售商发货,因而具有更快的服务响应速度,但其中的库存有较大的呆滞风险;国内中央仓可直接向零售商发货,但其服务响应速度则大幅降低。分析了该问题的重要特征,提出了实时销量数据驱动、基于机器学习的需求预测;建立了同时考虑本地仓直发比例、服务水平、产能限制与库存限制,以最小化系统库存水平的非线性规划模型,并通过抽样平均逼近将模型转化为线性规划,设计了基于基本库存水平的启发式优化算法。基于实际数据的计算表明,该模型及其求解算法可有效降低系统的库存水平,并提高系统的服务水平。This paper is concerned with distribution and inventory replenishment of a global consumer electronics manufacturing supply chain which consists of a central warehouse, oversea central distribution centers, and retailers. Direct shipments from the central distribution center to the retailers leads to a faster response but more risk of obsolete inventory, compared to shipment from the central warehouse to the retailers by air transportation. It analyzes the silent features of the problem such as lifecycle and sales pattern in details, and develops both a demand forecasting model using real-time sales data and inventory replenishment optimization models to tradeoff the service level and risks in the supply. Specifically, it proposes demand forecast by adopting machine learning algorithms, and considering the shipment paths, service levels, supply capacity and inventory levels, develops a nonlinear programming model to minimize the total quantity in the inventory system. Moreover, it linearizes the nonlinear programming model as a linear programming model and employs sample average approximation to solve the problem. Furthermore, it proposes a heuristic algorithm based on a modified base-stock policy. The numerical studies show that the heuristic algorithm can obtain results close to those of mathematical programming with much less computation effort. Compared with the real operation data, the proposed methods can effectively reduce inventory and increase the service level.
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