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  4. Semi-Parametric Segmentation Of Multiple Series Using A Dp-Lasso Strategy
 
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Semi-Parametric Segmentation Of Multiple Series Using A Dp-Lasso Strategy

Journal
Journal of Statistical Computation and Simulation
Date Issued
2016-11-30
Author(s)
Bertin, Karine  
Facultad de Ingeniería  
X. Collilieux
E. Lebarbier
Meza, Cristián  
Facultad de Ingeniería  
DOI
10.1080/00949655.2016.1260726
WoS ID
WOS:000399502200011
Abstract
We consider a semi-parametric approach to perform the joint segmentation of multiple series sharing a common functional part. We propose an iterative procedure based on Dynamic Programming for the segmentation part and Lasso estimators for the functional part. Our Lasso procedure, based on the dictionary approach, allows us to both estimate smooth functions and functions with local irregularity, which permits more flexibility than previous proposed methods. This yields to a better estimation of the functional part and improvements in the segmentation. The performance of our method is assessed using simulated data and real data from agriculture and geodetic studies. Our estimation procedure results to be a reliable tool to detect changes and to obtain an interpretable estimation of the functional part of the model in terms of known functions.
Subjects

Applied Mathematics

Computer Science, Int...

Modeling And Simulati...

Statistics And Probab...

Statistics, Probabili...

OCDE Subjects

Natural Sciences::Mat...

Quartile (Date Issued)
Q3
License
acceso restringido

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