基于面板数据和智能模糊聚类模型的现代计量经济模型系统分析

Guanglei Zhao, Yuhuan Shi
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摘要

本文研究了基于面板数据和智能模糊聚类模型的现代计量经济模型系统。我们用归一化灵敏度来分析一般多层前馈网络计量模型的灵敏度。灵敏度不仅考虑了一阶偏导数信息,而且考虑了经济系统输入的分布。经典的计量经济学模型大多采用常数参数的形式。然而,随着非经典计量经济模型的发展,出现了变参数、非参数、半参数等其他参数形式。因此,我们考虑不同视角的核心方面来构建效率模型。在实测数据集上对所设计的方法进行了仿真,并与其他方法进行了比较。
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Analysis of Modern Econometric Model System Based on Panel Data and Intelligent Fuzzy Clustering Model
Analysis of the modern econometric model system based on panel data and intelligent fuzzy clustering model is studied in this paper. We use normalized sensitivity to analyze the sensitivity of the general multi-layer feed-forward network econometric model. The sensitivity not only considers the first-order partial derivative information, but also takes into account the distribution of economic system inputs. Classical econometric models are mostly in the form of constant parameters. However, with the development of non-classical econometric models, other parameter forms have emerged, including variable parameters, non-parameters, and semi-parameters. Hence, we consider the core aspects of the different perspectives to construct the efficient model. The designed approach is simulated on the collected data sets and the compared with the other methods.
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