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A categorization methodology for the analysis of the mortality rate in psychiatric hospitals

机译:用于分析精神病医院死亡率的分类方法

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Analyzes the data relative to the mortality rate of patients in psychiatric hospitals in the Italian Region of Latium using a neural classification methodology. Given the superior classifying ability of this methodology, the study shows how research on a limited sample (approximately 10% of the total available data) would allow for a satisfactory generalization level. The neural approach confronts two classification algorithms: a backpropagation algorithm, and one developed by the authors, in which the learning function makes use of an adaptive rule, whose main characteristic is its strong dependence on time related to the procedures of input patterns.
机译:使用神经分类方法分析与意大利Latium地区精神病医院患者死亡率相关的数据。鉴于这种方法具有出色的分类能力,该研究表明,对有限样本(约占可用数据总数的10%)进行研究将如何使令人满意的泛化水平成为可能。神经方法面临两种分类算法:一种反向传播算法和一种由作者开发的算法,其中学习功能利用自适应规则,其主要特征是对输入模式过程的时间依赖性强。

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