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Comprehensive Evaluation Modeling and Analysis Based on ELM Integrated AHP and PCA: Application to Food Safety

机译:基于ELM AHP和PCA的综合评价建模与分析:在食品安全中的应用

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As an effective investigation, quality evaluation can summarize the various aspects of the corresponding evaluation objects. To reflect the true situation of the evaluation object more comprehensively and accurately, the focus of the evaluation process is how to effectively deal with the data of each evaluation indicator. To this end, this paper proposes a quality evaluation and analysis model, which is based on extreme learning machine (ELM) integrated principal component analysis (PCA) and analytic hierarchy process (AHP). The proposed model makes full use of the systematic and simplicity of AHP to assign weights to several important indicators, and uses PCA to eliminate the relevant impact of evaluation indicators, reducing the workload of indicator selections. Then the comprehensive quality score of the evaluation object is calculated according to the comprehensive evaluation function. At last, the generated new sample data set constitutes the training set of ELM, and finally the comprehensive quality evaluation model is obtained. To evaluate the performance of the proposed model, the proposed model is applied to the food safety data processing. Compared with the traditional food risk analysis model, the proposed model can get a more comprehensive result, which can enable decision makers to grasp the food quality information more accurately and comprehensively, and make corresponding feedback timely.
机译:作为有效的调查,质量评估可以总结相应评估对象的各个方面。为了更全面,准确地反映评估对象的真实情况,评估过程的重点是如何有效地处理每个评估指标的数据。为此,本文提出了一种基于极端学习机(ELM)集成主成分分析(PCA)和层次分析法(AHP)的质量评估和分析模型。所提出的模型充分利用了层次分析法的系统性和简便性,为几个重要指标分配了权重,并使用PCA消除了评价指标的相关影响,减少了指标选择的工作量。然后根据综合评价函数计算出评价对象的综合质量得分。最后,生成的新样本数据集构成了ELM的训练集,最终获得了综合质量评价模型。为了评估提出的模型的性能,将提出的模型应用于食品安全数据处理。与传统的食品风险分析模型相比,该模型可以获得更全面的结果,可以使决策者更准确,更全面地掌握食品质量信息,并及时做出相应的反馈。

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