Log-transformation and its implications for data analysis.

Shanghai Arch Psychiatry

Department of Biostatistics and Computational Biology, University of Rochester, Rochester, NY, USA.

Published: April 2014

The log-transformation is widely used in biomedical and psychosocial research to deal with skewed data. This paper highlights serious problems in this classic approach for dealing with skewed data. Despite the common belief that the log transformation can decrease the variability of data and make data conform more closely to the normal distribution, this is usually not the case. Moreover, the results of standard statistical tests performed on log-transformed data are often not relevant for the original, non-transformed data.We demonstrate these problems by presenting examples that use simulated data. We conclude that if used at all, data transformations must be applied very cautiously. We recommend that in most circumstances researchers abandon these traditional methods of dealing with skewed data and, instead, use newer analytic methods that are not dependent on the distribution the data, such as generalized estimating equations (GEE).

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4120293PMC
http://dx.doi.org/10.3969/j.issn.1002-0829.2014.02.009DOI Listing

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