基于 DEA/GP 的综合方法,设计具有混合数据的医疗保健供应链:现实世界中的应用

IF 1.8 Q3 MANAGEMENT
Zoubida Chorfi
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引用次数: 0

摘要

目的 由于供应链的卓越性至关重要,因此设计一个合适的医疗供应链是全球医疗服务提供商的一个重要考虑因素。为实现这一目标,本研究阐述了一种基于数据包络分析(DEA)和目标编程(GP)的混合算法,用于设计现实世界中的混合数据医疗供应链。研究建议使用数据包络分析模型和数据聚合来评估医疗保健供应链的几种潜在配置的性能。作为所提方法的一部分,通过找到表征这些供应链的原始变量(输入和输出)的水平,对所评估的供应链进行了 GP 模型维度化。研究限制/意义本研究的结果将帮助医疗决策者将其供应链与同行进行比较,并对其资源进行维度化,以达到给定的生产水平。实际意义为摩洛哥公共卫生部设计现实生活中的医药供应链提供了实际应用,以支持所提算法的实用性。 原创性/价值本文的创新之处在于开发了一种基于 DEA 和 GP 的混合方法,用于在存在混合数据的情况下设计适当的现实生活中的医疗供应链。这种方法无疑有助于帮助医疗决策者在当今激烈的竞争中设计出高效的供应链。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An integrated DEA/GP based approach for designing healthcare supply chains with mixed data: a real world application

Purpose

As supply chain excellence matters, designing an appropriate health-care supply chain is a great consideration to the health-care providers worldwide. Therefore, the purpose of this paper is to benchmark several potential health-care supply chains to design an efficient and effective one in the presence of mixed data.

Design/methodology/approach

To achieve this objective, this research illustrates a hybrid algorithm based on data envelopment analysis (DEA) and goal programming (GP) for designing real-world health-care supply chains with mixed data. A DEA model along with a data aggregation is suggested to evaluate the performance of several potential configurations of the health-care supply chains. As part of the proposed approach, a GP model is conducted for dimensioning the supply chains under assessment by finding the level of the original variables (inputs and outputs) that characterize these supply chains.

Findings

This paper presents an algorithm for modeling health-care supply chains exclusively designed to handle crisp and interval data simultaneously.

Research limitations/implications

The outcome of this study will assist the health-care decision-makers in comparing their supply chains against peers and dimensioning their resources to achieve a given level of productions.

Practical implications

A real application to design a real-life pharmaceutical supply chain for the public ministry of health in Morocco is given to support the usefulness of the proposed algorithm.

Originality/value

The novelty of this paper comes from the development of a hybrid approach based on DEA and GP to design an appropriate real-life health-care supply chain in the presence of mixed data. This approach definitely contributes to assist health-care decision-makers design an efficient and effective supply chain in today’s competitive word.

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来源期刊
CiteScore
5.50
自引率
12.50%
发文量
52
期刊介绍: Journal of Modelling in Management (JM2) provides a forum for academics and researchers with a strong interest in business and management modelling. The journal analyses the conceptual antecedents and theoretical underpinnings leading to research modelling processes which derive useful consequences in terms of management science, business and management implementation and applications. JM2 is focused on the utilization of management data, which is amenable to research modelling processes, and welcomes academic papers that not only encompass the whole research process (from conceptualization to managerial implications) but also make explicit the individual links between ''antecedents and modelling'' (how to tackle certain problems) and ''modelling and consequences'' (how to apply the models and draw appropriate conclusions). The journal is particularly interested in innovative methodological and statistical modelling processes and those models that result in clear and justified managerial decisions. JM2 specifically promotes and supports research writing, that engages in an academically rigorous manner, in areas related to research modelling such as: A priori theorizing conceptual models, Artificial intelligence, machine learning, Association rule mining, clustering, feature selection, Business analytics: Descriptive, Predictive, and Prescriptive Analytics, Causal analytics: structural equation modeling, partial least squares modeling, Computable general equilibrium models, Computer-based models, Data mining, data analytics with big data, Decision support systems and business intelligence, Econometric models, Fuzzy logic modeling, Generalized linear models, Multi-attribute decision-making models, Non-linear models, Optimization, Simulation models, Statistical decision models, Statistical inference making and probabilistic modeling, Text mining, web mining, and visual analytics, Uncertainty-based reasoning models.
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