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Article Dans Une Revue Applied Mathematics and Computation Année : 2014

A Geometrical Approach to Iterative Isotone Regression

Résumé

In the present paper, we propose and analyze a novel method for estimating a univariate regression function of bounded variation. The underpinning idea is to combine two classical tools in nonparametric statistics, namely isotonic regression and the estimation of additive models. A geometrical interpretation enables us to link this iterative method with Von Neumann's algorithm. Moreover, making a connection with the general property of isotonicity of projection onto convex cones, we derive another equivalent algorithm and go further in the analysis. As iterating the algorithm leads to overfitting, several practical stopping criteria are also presented and discussed.

Dates et versions

hal-00756715 , version 1 (23-11-2012)

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Arnaud Guyader, Nicolas Jégou, Alexander B. Németh, Sándor Z. Németh. A Geometrical Approach to Iterative Isotone Regression. Applied Mathematics and Computation, 2014, 227, pp.359-369. ⟨10.1016/j.amc.2013.11.048⟩. ⟨hal-00756715⟩
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