Publication | Open Access
Estimation of Integrated Squared Density Derivatives from a Contaminated Sample
71
Citations
15
References
2002
Year
Squared Bias TermEngineeringDensity EstimationData ScienceUncertainty QuantificationReproducing Kernel MethodBiostatisticsStatistical InferenceSquared Density DerivativesIntegrated Squared DensityEstimation TheoryPublic HealthFunctional Data AnalysisStatisticsKernel MethodSemi-nonparametric EstimationKernel Estimator
Summary We propose a kernel estimator of integrated squared density derivatives, from a sample that has been contaminated by random noise. We derive asymptotic expressions for the bias and the variance of the estimator and show that the squared bias term dominates the variance term. This coincides with results that are available for non-contaminated observations. We then discuss the selection of the bandwidth parameter when estimating integrated squared density derivatives based on contaminated data. We propose a data-driven bandwidth selection procedure of the plug-in type and investigate its finite sample performance via a simulation study.
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