Supplier Evaluation in Supply Chain Environment Based on Radial Basis Function Neural Network

Pub Date : 2024-03-07 DOI:10.4018/ijitwe.339186
Shilin Liu, Guangbin Yu, Youngchul Kim
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Abstract

The comprehensive evaluation and selection of suppliers under the environment of supply chain management has become a key factor affecting the success of supply chain. How to select suppliers and the strategic partnership between suppliers under the environment of supply chain management has become an important challenge. To solve this problem, this paper takes the supplier evaluation and selection of Guangzhou Automobile Toyota Company as the research object, constructs the index system of supplier comprehensive evaluation and selection, uses the RBF neural network algorithm to establish the supplier evaluation and selection model, and makes an experimental study. The results show that radial basis function neural network is a local approximation network, which has a unique and definite solution to the problem, and there is no local minimum problem in BP network. It is a method that enables enterprises and suppliers to have a clear understanding and seek further promotion together. The research provides theoretical data support for enterprise managers to make decisions.
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基于径向基函数神经网络的供应链环境中的供应商评估
供应链管理环境下供应商的综合评价与选择已成为影响供应链成败的关键因素。在供应链管理环境下,如何选择供应商以及供应商之间的战略伙伴关系已成为一个重要的挑战。为解决这一问题,本文以广汽丰田公司的供应商评价与选择为研究对象,构建了供应商综合评价与选择的指标体系,利用 RBF 神经网络算法建立了供应商评价与选择模型,并进行了实验研究。结果表明,径向基函数神经网络是一种局部逼近网络,对问题有唯一的确定解,BP 网络不存在局部最小问题。该方法能让企业和供应商有清晰的认识,共同寻求进一步的推广。该研究为企业管理者的决策提供了理论数据支持。
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