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A comparative inquiry into supply chain performance appraisal based on Support Vector Machine and neural network

机译:基于支持向量机和神经网络的供应链绩效评估比较查询

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This paper focuses on solving the practical problem of the supply chain performance appraisal. To improve the original evaluation methods, it constructs a new index system from a new angle of view based on survey and the existing outcomes. At the same time, it proposes a new theoretical evaluation model of supply chain performance appraisal based on Support Vector Machine. Compared with the neural network method, the new model can overcome the disadvantages of the inherent instability, local minimum, slow convergence and poor ability of generalizing of the traditional methods. In addition, an empirical study has been conducted and the results show that the model based on Support Vector Machine is effective and has more stable results, higher accuracy and better ability of generalizing than that of the neural network. Ultimately, it provides an effective method of supply chain performance appraisal for the managers in practical application.
机译:本文侧重于解决供应链绩效评估的实际问题。为了改进原始评估方法,它根据基于调查和现有的结果构建了一种从新的视角来构建一个新的指标体系。与此同时,基于支持向量机的供应链绩效评估,提出了一种新的理论评价模型。与神经网络方法相比,新模型可以克服固有不稳定,局部最小,缓慢收敛性和传统方法概括能力差的缺点。此外,已经进行了实证研究,结果表明,基于支持向量机的模型是有效的,结果更稳定,更高的准确性和更好的概括能力高于神经网络的结果。最终,它为实际应用中的管理者提供了有效的供应链绩效评估方法。

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