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精神科临床研究中偏态数据分布的分析方法:处理大量零值的情况

Methods for analysis of skewed data distributions in psychiatric clinical studies: working with many zero values.

作者信息

Delucchi Kevin L, Bostrom Alan

机构信息

Department of Psychiatry, Box 0984-TRC, University of California-San Francisco, 401Parnassus Avenue, San Francisco, CA 94143-0984, USA.

出版信息

Am J Psychiatry. 2004 Jul;161(7):1159-68. doi: 10.1176/appi.ajp.161.7.1159.

Abstract

OBJECTIVE

Psychiatric clinical studies, including those in drug abuse research, often provide data that are challenging to analyze and use for hypothesis testing because they are heavily skewed and marked by an abundance of zero values. The authors consider methods of analyzing data with those characteristics.

METHOD

The possible meaning of zero values and the statistical methods that are appropriate for analyzing data with many zero values in both cross-sectional and longitudinal designs are reviewed. The authors illustrate the application of these alternative methods using sample data collected with the Addiction Severity Index.

RESULTS

Data that include many zeros, if the zero value is considered the lowest value on a scale that measures severity, may be analyzed with several methods other than standard parametric tests. If zero values are considered an indication of a case without a problem, for which a measure of severity is not meaningful, analyses should include separate statistical models for the zero values and for the nonzero values. Tests linking the separate models are available.

CONCLUSIONS

Standard methods, such as t tests and analyses of variance, may be poor choices for data that have unique features. The use of proper statistical methods leads to more meaningful study results and conclusions.

摘要

目的

精神病学临床研究,包括药物滥用研究中的那些,常常提供难以分析和用于假设检验的数据,因为这些数据严重偏态且零值众多。作者探讨分析具有这些特征的数据的方法。

方法

回顾零值的可能含义以及适用于分析横断面和纵向设计中具有许多零值的数据的统计方法。作者使用通过成瘾严重程度指数收集的样本数据说明这些替代方法的应用。

结果

如果零值被视为衡量严重程度量表上的最低值,那么包含许多零值的数据可以用标准参数检验以外的几种方法进行分析。如果零值被视为没有问题的情况的指示,对于这种情况严重程度的衡量没有意义,分析应包括针对零值和非零值的单独统计模型。有将单独模型联系起来的检验方法。

结论

标准方法,如t检验和方差分析,对于具有独特特征的数据可能不是好的选择。使用适当的统计方法会得出更有意义的研究结果和结论。

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