Publication: Nonparametric maximum likelihood estimation of the structural mean of a sample of curves
Nonparametric maximum likelihood estimation of the structural mean of a sample of curves
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Gervini, D., & Gasser, T. (2005). Nonparametric maximum likelihood estimation of the structural mean of a sample of curves. Biometrika, 92(4), 801–820. https://doi.org/10.1093/biomet/92.4.801
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A random sample of curves can be usually thought of as noisy realisations of a compound stochastic process X(t) = Z{W(t)}, where Z(t) produces random amplitude variation and W(t) produces random dynamic or phase variation. In most applications it is more important to estimate the so-called structural mean µ(t) = E{Z(t)} than the crosssectional mean E{X(t)}, but this estimation problem is difficult because the process Z(t) is not directly observable. In this paper we propose a nonparametric maximum likelihood estimator of µ(t). This es
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Gervini, D., & Gasser, T. (2005). Nonparametric maximum likelihood estimation of the structural mean of a sample of curves. Biometrika, 92(4), 801–820. https://doi.org/10.1093/biomet/92.4.801