Optimizing Inventory Carrying Cost Using Rank Order Clustering Approach for Small and Medium Enterprises (SMES)

Ganesh Narkhede B, N. Rajhans
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Abstract

For any company, whether big enterprises or small and medium-sized enterprises (SMEs), inventory is one of the key assets. Therefore, inventory-related decisions directly influence the revenue generated by the firm. This work aims to find a sufficient degree of control over each inventory item and to mitigate the inventory management problems of SMEs. Rank Order Clustering (ROC) algorithm is used in this study for multi-item inventory item aggregation. The proposed framework is tested on a medium-sized gearmanufacturing firm that manufactures 40 different types of planetary and customized gear-boxes. The results demonstrate 47.64 % of cost-saving through the proposed methodology of cluster formation using ROC and quantity discounts. This approach helps to identify different assemblies to aggregate the component requirements and to formulate a particular inventory strategy to minimize inventory carrying costs for each component.
基于秩序聚类方法的中小企业库存持有成本优化
对于任何企业来说,无论是大企业还是中小企业,库存都是重要的资产之一。因此,与库存相关的决策直接影响公司产生的收入。这项工作的目的是找到对每个库存项目的足够程度的控制,并减轻中小企业的库存管理问题。本研究采用秩序聚类(ROC)算法对多项目库存项目进行聚合。该框架在一家中型齿轮制造公司进行了测试,该公司生产40种不同类型的行星和定制齿轮箱。结果表明,通过使用ROC和数量折扣提出的聚类形成方法,节省了47.64%的成本。这种方法有助于识别不同的组件,以汇总组件需求,并制定特定的库存策略,以最大限度地减少每个组件的库存携带成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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