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Uncertain Multiplicative Language Decision Method Based on Group Compromise Framework for Evaluation of Mobile Medical APPs in China

机译:基于群体折衷框架的不确定乘数语言决策方法在中国移动医疗APP评估中的应用

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摘要

The mobile medical application (M-medical APP) can optimize medical service process and reduce health management costs for users, which has become an important complementary form of traditional medical services. To assist users including patients choose the ideal M-medical APP, we proposed a novel multiple attribute group decision making algorithm based on group compromise framework, which need not determine the weight of decision-maker. The algorithm utilized an uncertain multiplicative linguistic variable to measure the individual original preference to express the real evaluation information as much as possible. The attribute weight was calculated by maximizing the differences among alternatives. It determined the individual alternatives ranking according to the net flow of each alternative. By solved the 0–1 optimal model with the objective of minimizing the differences between individual ranking, the ultimate group compromise ranking was obtained. Then we took 10 well-known M-medical APPs in Chinese as an example, we summarized service categories provided for users and constructed the assessment system consisting of 8 indexes considering the service quality users are concerned with. Finally, the effectiveness and superiority of the proposed method and the consistency of ranking results were verified, through comparing the group ranking results of 3 similar algorithms. The experiments show that group compromise ranking is sensitive to attribute weight.
机译:移动医疗应用程序(M-medical APP)可以优化医疗服务流程,降低用户的健康管理成本,已经成为传统医疗服务的重要补充形式。为了帮助包括患者在内的用户选择理想的M-medical APP,我们提出了一种基于群体妥协框架的新型多属性群体决策算法,该算法无需确定决策者的权重。该算法利用不确定的乘法语言变量来测量各个原始偏好,以尽可能表达真实的评估信息。通过最大化替代方案之间的差异来计算属性权重。它根据每个替代方案的净流量确定各个替代方案的排名。通过最小化个体排名之间差异的目的,解决了0-1最优模型,从而获得了最终的群体妥协排名。然后以10个中文著名的M-医学APP为例,总结了为用户提供的服务类别,构建了由8个指标组成的考核系统,同时考虑了用户所关注的服务质量。最后,通过比较3种相似算法的组排序结果,验证了所提方法的有效性和优越性以及排序结果的一致性。实验表明,群体妥协排名对属性权重敏感。

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