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Shrinkage Estimator: Statistics, Regularization (Mathematics), Statistical Inference, Dominating Estimator, Unbiased -

englanti
2026-03-14
118,39 € 182,14 €

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High Quality Content by WIKIPEDIA articles! In statistics, a shrinkage estimator is an estimator that, either explicitly or implicitly, incorporates the effects of shrinkage. In loose terms this means that a naive or raw estimate is improved by combining it with other information. The term relates to the notion that the improved estimate is made closer to the value supplied by the 'other information' than t ... Täydellinen kuvaus

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High Quality Content by WIKIPEDIA articles! In statistics, a shrinkage estimator is an estimator that, either explicitly or implicitly, incorporates the effects of shrinkage. In loose terms this means that a naive or raw estimate is improved by combining it with other information. The term relates to the notion that the improved estimate is made closer to the value supplied by the 'other information' than the raw estimate. In this sense, shrinkage is used to regularize ill-posed inference problems. One general result is that many standard estimators can be improved, in terms of mean squared error (MSE), by shrinking them towards zero (or any other fixed constant value).

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Julkaisija OmniScriptum
Julkaisuvuosi 2026
Kannen tyyppi Pehmeäkantinen
EAN 9786130495176
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Arvostelet: Shrinkage Estimator: Statistics, Regularization (Mathematics), Statistical Inference, Dominating Estimator, Unbiased
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118,39 € 182,14 €