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An expert system based on computer vision and statistical modelling to support the analysis of collagen degradation

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http://hdl.handle.net/2183/30504
Atribución 3.0 España
Except where otherwise noted, this item's license is described as Atribución 3.0 España
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  • Investigación (FCS) [1293]
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Title
An expert system based on computer vision and statistical modelling to support the analysis of collagen degradation
Author(s)
Robles-Bykbaev, Yaroslava
Naya, Salvador
Díaz-Prado, Silvia
Calle-López, Daniel
Robles-Bykbaev, Vladimir
Garzón-Muñoz, Luis
Sanjurjo-Rodríguez, Clara
Tarrío-Saavedra, Javier
Date
2018
Citation
Robles-Bykbaev Y, Naya S, Díaz Prado S, et al. An expert system based on computer vision and statistical modelling to support the analysis of collagen degradation. En: Wongchoosuk C, editor. Intelligent systems. London, UK, IntechOpen; 2018. p. 123-143
Abstract
[Abstract] The poly(DL-lactide-co-glycolide) (PDLGA) copolymers have been specifically designed and performed as biomaterials, taking into account their biodegradability and biocompatibility properties. One of the applications of statistical degradation models in material engineering is the estimation of the materials degradation level and reliability. In some reliability studies, as the present case, it is possible to measure physical degradation (mass loss, water absorbance, pH) depending on time. To this aim, we propose an expert system able to provide support in collagen degradation analysis through computer vision methods and statistical modelling techniques. On this base, the researchers can determine which statistical model describes in a better way the biomaterial behaviour. The expert system was trained and evaluated with a corpus of 63 images (2D photographs obtained by electron microscopy) of human mesenchymal stem cells (CMMh-3A6) cultivated in a laboratory experiment lasting 44 days. The collagen type-1 sponges were arranged in 3 groups of 21 samples (each image was obtained in intervals of 72 hours).
Keywords
Computer vision
Collagen degradation
Statistical modelling
Long short-term neural networks
 
Editor version
http://dx.doi.org/10.5772/intechopen.72982
Rights
Atribución 3.0 España
ISBN
978-1-78923-607-1

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