Development of a New Fractal Algorithm to Predict Quality Traits of MRI Loins

Daniel Caballero, Andrés Caro, Jose Manuel Amigo Rubio, Anders B. Dahl, Bjarne Kjær Ersbøll, Trinidad Pérez-Palacios

2 Citationer (Scopus)

Abstract

Traditionally, the quality traits of meat products have been estimated by means of physico-chemical methods. Computer vision algorithms on MRI have also been presented as an alternative to these destructive methods since MRI is non-destructive, non-ionizing and innocuous. The use of fractals to analyze MRI could be another possibility for this purpose. In this paper, a new fractal algorithm is developed, to obtain features from MRI based on fractal characteristics. This algorithm is called OPFTA (One Point Fractal Texture Algorithm). Three fractal algorithms were tested in this study: CFA (Classical fractal algorithm), FTA (Fractal texture algorithm) and OPFTA. The results obtained by means of these three fractal algorithms were correlated to the results obtained by means of physico-chemical methods. OPFTA and FTA achieved correlation coefficients higher than 0.75 and CFA reached low relationship for the quality parameters of loins. The best results were achieved for OPFTA as fractal algorithm (0.837 for lipid content, 0.909 for salt content and 0.911 for moisture). These high correlation coefficients confirm the new algorithm as an alternative to the classical computational approaches (texture algorithms) in order to compute the quality parameters of meat products in a non-destructive and efficient, way.

OriginalsprogEngelsk
TitelComputer Analysis of Images and Patterns : 17th International Conference, CAIP 2017, Ystad, Sweden, August 22-24, 2017, Proceedings, Part I
RedaktørerMichael Felsberg, Anders Heyden, Norbert Krüger
Antal sider11
UdgivelsesstedCham
ForlagSpringer
Publikationsdato2017
Sider208-218
ISBN (Trykt)978-3-319-64688-6
ISBN (Elektronisk)978-3-319-64689-3
DOI
StatusUdgivet - 2017
NavnLecture notes in computer science
Vol/bind10424
ISSN0302-9743

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