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Support vector regression model for the estimation of γ -ray buildup factors for multi-layer shields (CROSBI ID 134316)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Trontl, Krešimir ; Šmuc, Tomislav ; Pevec, Dubravko Support vector regression model for the estimation of γ -ray buildup factors for multi-layer shields // Annals of nuclear energy, 34 (2007), 12; 939-952-x

Podaci o odgovornosti

Trontl, Krešimir ; Šmuc, Tomislav ; Pevec, Dubravko

engleski

Support vector regression model for the estimation of γ -ray buildup factors for multi-layer shields

The accuracy of the point-kernel method, which is a widely used practical tool for γ -ray shielding calculations, strongly depends on the quality and accuracy of buildup factors used in the calculations. Although, buildup factors for single-layer shields comprised of a single material are well known, calculation of buildup factors for stratified shields, each layer comprised of different material or a combination of materials, represent a complex physical problem. Recently, a new compact mathematical model for multi-layer shield buildup factor representation has been suggested for embedding into point-kernel codes thus replacing traditionally generated complex mathematical expressions. The new regression model is based on support vector machines learning technique, which is an extension of Statistical Learning Theory. The paper gives complete description of the novel methodology with results pertaining to realistic engineering multi-layer shielding geometries. The results based on support vector regression machine learning confirm that this approach provides a framework for general, accurate and computationally acceptable multi-layer buildup factor model.

support vector regression (SVR); buildup factor; point-kernel method; dose radiation

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Podaci o izdanju

34 (12)

2007.

939-952-x

objavljeno

0306-4549

Povezanost rada

Elektrotehnika, Računarstvo

Poveznice
Indeksiranost