Bootstrap-based inference on the difference in the means of two correlated functional processes

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Abstract

We propose nonparametric inference methods on the mean difference between two correlated functional processes. We compare methods that (1) incorporate different levels of smoothing of the mean and covariance; (2) preserve the sampling design; and (3) use parametric and nonparametric estimation of the mean functions. We apply our method to estimating the mean difference between average normalized δ power of sleep electroencephalograms for 51 subjects with severe sleep apnea and 51 matched controls in the first 4;h after sleep onset. We obtain data from the Sleep Heart Health Study, the largest community cohort study of sleep. Although methods are applied to a single case study, they can be applied to a large number of studies that have correlated functional data. © 2012 John Wiley & Sons, Ltd.

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Crainiceanu, C. M., Staicu, A. M., Ray, S., & Punjabi, N. (2012). Bootstrap-based inference on the difference in the means of two correlated functional processes. Statistics in Medicine, 31(26), 3223–3240. https://doi.org/10.1002/sim.5439

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