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基于协同效应和不完全数据的商业资源双边匹配方法

Bilateral Matching Method for Business Resources Based on Synergy Effects and Incomplete Data.

作者信息

Wang Shuhai, Sun Linfu, Yu Yang

机构信息

School of Computing and Artificial Intelligence, Southwest Jiaotong University, Chengdu 611756, China.

Manufacturing Industry Chain Collaboration and Information Support Technology Key Laboratory of Sichuan Province, Southwest Jiaotong University, Chengdu 610031, China.

出版信息

Entropy (Basel). 2024 Aug 6;26(8):669. doi: 10.3390/e26080669.

Abstract

On the third-party cloud platform, to help enterprises accurately obtain high-quality and valuable business resources from the massive information resources, a bilateral matching method for business resources, based on synergy effects and incomplete data, is proposed. The method first utilizes a k-nearest neighbor imputation algorithm, based on comprehensive similarity, to fill in missing values. Then, it constructs a satisfaction evaluation index system for business resource suppliers and demanders, and the weights of the satisfaction evaluation indices are determined, based on the fuzzy analytic hierarchy process (FAHP) and the entropy weighting method (EWM). On this basis, a bilateral matching model is constructed with the objectives of maximizing the satisfaction of both the supplier and the demander, as well as achieving the synergy effect. Finally, the model is solved using the linear weighting method to obtain the most satisfactory business resources for both supply and demand. The effectiveness of the method is verified through a practical application and comparative experiments.

摘要

在第三方云平台上,为帮助企业从海量信息资源中准确获取高质量、有价值的业务资源,提出一种基于协同效应和不完全数据的业务资源双边匹配方法。该方法首先利用基于综合相似度的k近邻插补算法填充缺失值。然后,构建业务资源供需双方的满意度评价指标体系,并基于模糊层次分析法(FAHP)和熵权法(EWM)确定满意度评价指标的权重。在此基础上,构建以供需双方满意度最大化和实现协同效应为目标的双边匹配模型。最后,采用线性加权法求解该模型,以获得供需双方最满意的业务资源。通过实际应用和对比实验验证了该方法的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c82/11353705/5313344f4b87/entropy-26-00669-g001.jpg

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