Publication:
An ordinal CNN approach for the assessment of neurological damage in Parkinson's disease patients

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Date

2021-05-21

Authors

Barbero-Gomez, Javier
Gutierrez, Pedro-Antonio
Vargas, Victor-Manuel
Vallejo-Casas, Juan-Antonio
Hervas-Martinez, Cesar

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Elsevier
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Abstract

3D image scans are an assessment tool for neurological damage in Parkinson's disease (PD) patients. This diagnosis process can be automatized to help medical staff through Decision Support Systems (DSSs), and Convolutional Neural Networks (CNNs) are good candidates, because they are effective when applied to spatial data. This paper proposes a 3D CNN ordinal model for assessing the level or neurological damage in PD patients. Given that CNNs need large datasets to achieve acceptable performance, a data augmentation method is adapted to work with spatial data. We consider the Ordinal Graph-based Oversampling via Shortest Paths (OGO-SP) method, which applies a gamma probability distribution for inter-class data generation. A modification of OGO-SP is proposed, the OGO-SP-beta algorithm, which applies the beta distribution for generating synthetic samples in the inter-class region, a better suited distribution when compared to gamma. The evaluation of the different methods is based on a novel 3D image dataset provided by the Hospital Universitario 'Reina Sofia' (Cordoba, Spain). We show how the ordinal methodology improves the performance with respect to the nominal one, and how OGO-SP-beta yields better performance than OGO-SP.

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Humans
Parkinson disease
Spain
Neural networks, computer
Algorithms
Medical staff

DeCS Terms

Algoritmos
Cuerpo médico
Enfermedad de Parkinson
España
Humanos
Redes neurales de la computación

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Keywords

Artificial neural networks, Ordinal classification, Data augmentation, Computer-aided diagnosis, Neural-network, Diagnosis, Models

Citation

Barbero-Gómez J, Gutiérrez PA, Vargas VM, Vallejo-Casas JA, Hervás-Martínez C. An ordinal CNN approach for the assessment of neurological damage in Parkinson’s disease patients. Expert Systems With Applications [Internet]. 1 de noviembre de 2021;182:115271