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Full-Text Articles in Statistical Methodology
Methods For Shape-Constrained Kernel Density Estimation, Mark A. Wolters
Methods For Shape-Constrained Kernel Density Estimation, Mark A. Wolters
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Nonparametric density estimators are used to estimate an unknown probability density while making minimal assumptions about its functional form. Although the low reliance of nonparametric estimators on modelling assumptions is a benefit, their performance will be improved if auxiliary information about the density's shape is incorporated into the estimate. Auxiliary information can take the form of shape constraints, such as unimodality or symmetry, that the estimate must satisfy. Finding the constrained estimate is usually a difficult optimization problem, however, and a consistent framework for finding estimates across a variety of problems is lacking.
It is proposed to find shape-constrained density …