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A New Approach to Diagnose Parkinson's Disease Using a Structural Cooccurrence Matrix for a Similarity Analysis
- Source :
- Computational Intelligence and Neuroscience, Computational Intelligence and Neuroscience, Vol 2018 (2018)
- Publication Year :
- 2018
- Publisher :
- Hindawi, 2018.
-
Abstract
- Parkinson’s disease affects millions of people around the world and consequently various approaches have emerged to help diagnose this disease, among which we can highlight handwriting exams. Extracting features from handwriting exams is an important contribution of the computational field for the diagnosis of this disease. In this paper, we propose an approach that measures the similarity between the exam template and the handwritten trace of the patient following the exam template. This similarity was measured using the Structural Cooccurrence Matrix to calculate how close the handwritten trace of the patient is to the exam template. The proposed approach was evaluated using various exam templates and the handwritten traces of the patient. Each of these variations was used together with the Naïve Bayes, OPF, and SVM classifiers. In conclusion the proposed approach was proven to be better than the existing methods found in the literature and is therefore a promising tool for the diagnosis of Parkinson’s disease.
- Subjects :
- 0209 industrial biotechnology
Handwriting
Parkinson's disease
General Computer Science
Article Subject
Computer science
General Mathematics
education
02 engineering and technology
lcsh:Computer applications to medicine. Medical informatics
Machine learning
computer.software_genre
Field (computer science)
lcsh:RC321-571
Machine Learning
Naive Bayes classifier
020901 industrial engineering & automation
Similarity (network science)
0202 electrical engineering, electronic engineering, information engineering
medicine
Humans
Diagnosis, Computer-Assisted
lcsh:Neurosciences. Biological psychiatry. Neuropsychiatry
TRACE (psycholinguistics)
business.industry
General Neuroscience
Matrix (music)
Parkinson Disease
Signal Processing, Computer-Assisted
General Medicine
medicine.disease
Support vector machine
Motor Skills
lcsh:R858-859.7
020201 artificial intelligence & image processing
Artificial intelligence
business
computer
Research Article
Subjects
Details
- Language :
- English
- ISSN :
- 16875273 and 16875265
- Volume :
- 2018
- Database :
- OpenAIRE
- Journal :
- Computational Intelligence and Neuroscience
- Accession number :
- edsair.doi.dedup.....863a21527e3c59b2e949d41f1cefedf5