2017
DOI: 10.1080/03610926.2017.1346807
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Bayesian adaptive bandwidth selector for multivariate discrete kernel estimator

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Cited by 12 publications
(12 citation statements)
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“…However, it is tedious and less precise. Many papers have recently proposed Bayesian approaches (e.g., [6,7,13,14,35,36] and references therein). In particular, they have recommended local Bayesian for discrete smoothing of pmf (e.g., [6,7,37]) and adaptive one for continuous smoothing of pdf (e.g., [13,35,36]).…”
Section: Proposition 2 Under the Assumption (A1) On F Then The Estimator F N In (8) Of F Verifiesmentioning
confidence: 99%
See 3 more Smart Citations
“…However, it is tedious and less precise. Many papers have recently proposed Bayesian approaches (e.g., [6,7,13,14,35,36] and references therein). In particular, they have recommended local Bayesian for discrete smoothing of pmf (e.g., [6,7,37]) and adaptive one for continuous smoothing of pdf (e.g., [13,35,36]).…”
Section: Proposition 2 Under the Assumption (A1) On F Then The Estimator F N In (8) Of F Verifiesmentioning
confidence: 99%
“…It was introduced in the multivariate setup by Aitchison and Aitken [38] and investigated as a discrete associated kernel which is symmetric to the target x by [28] in univariate case; see [7] for a Bayesian approach in multivariate setup. Note here that its normalized constant is always 1 = C n .…”
Section: Example 1 (Categorical)mentioning
confidence: 99%
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“…For multi-dimensional data, besides bandwidth matrix, the product kernel is usually used to solve high-dimensional problems. Belaid et al (2018) [21] applied the adaptive bandwidth selected by the Bayesian method to the high-dimensional discrete kernel. Gramacki and Gramacki (2017) [22] used the FFT method to solve some problems of the bandwidth matrix.…”
Section: Introductionmentioning
confidence: 99%