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首页> 外文期刊>Econometric Reviews >THE LINK BETWEEN STATISTICAL LEARNING THEORY AND ECONOMETRICS: APPLICATIONS IN ECONOMICS,FINANCE, AND MARKETING
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THE LINK BETWEEN STATISTICAL LEARNING THEORY AND ECONOMETRICS: APPLICATIONS IN ECONOMICS,FINANCE, AND MARKETING

机译:统计学习理论与经济之间的联系:在经济,金融和市场营销中的应用

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摘要

Statistical Learning refers to statistical aspects of automated extraction of regularities (structure) in datasets. It is a broad area which includes neural networks, regression-trees, nonparametric statistics and sieve approximation, boosting, mixtures of models, computational complexity, computational statistics, and nonlinear models in general. Although Statistical Learning Theory and Econometrics are closely related, much of the development in each of the areas is seemingly proceeding independently. This special issue brings together these two areas, and is intended to stimulate new applications and appreciation in economics, finance, and marketing. This special volume contains ten innovative articles covering a broad range of relevant topics.
机译:统计学习是指自动提取数据集中的规律性(结构)的统计方面。它是一个广阔的领域,包括神经网络,回归树,非参数统计和筛网逼近,增强,模型混合,计算复杂性,计算统计和非线性模型。尽管统计学习理论和计量经济学密切相关,但每个领域的许多发展似乎都是在独立进行。本期特刊将这两个领域结合在一起,旨在激发经济学,金融和市场营销领域的新应用和欣赏。本专题集包含十篇创新文章,涉及广泛的相关主题。

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