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A Sorting Statistic with Application in Neurological Magnetic Resonance Imaging of Autism

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2018

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Hindawi
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Levman, Jacob, Emi Takahashi, Cynthia Forgeron, Patrick MacDonald, Natalie Stewart, Ashley Lim, and Anne Martel. 2018. “A Sorting Statistic with Application in Neurological Magnetic Resonance Imaging of Autism.” Journal of Healthcare Engineering 2018 (1): 8039075. doi:10.1155/2018/8039075. http://dx.doi.org/10.1155/2018/8039075.

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Abstract

Effect size refers to the assessment of the extent of differences between two groups of samples on a single measurement. Assessing effect size in medical research is typically accomplished with Cohen's d statistic. Cohen's d statistic assumes that average values are good estimators of the position of a distribution of numbers and also assumes Gaussian (or bell-shaped) underlying data distributions. In this paper, we present an alternative evaluative statistic that can quantify differences between two data distributions in a manner that is similar to traditional effect size calculations; however, the proposed approach avoids making assumptions regarding the shape of the underlying data distribution. The proposed sorting statistic is compared with Cohen's d statistic and is demonstrated to be capable of identifying feature measurements of potential interest for which Cohen's d statistic implies the measurement would be of little use. This proposed sorting statistic has been evaluated on a large clinical autism dataset from Boston Children's Hospital, Harvard Medical School, demonstrating that it can potentially play a constructive role in future healthcare technologies.

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