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( Ramya Sivanesan ),( Alvia Anwar ),( Abhishek Talwar ),( Menaka. R ),( Karthik. R ) 한국인터넷정보학회 2016 KSII Transactions on Internet and Information Syst Vol.10 No.9
With millions of people across the globe suffering from Parkinson`s disease (PD), an objective, confirmatory test for the same is yet to be developed. This research aims to develop a system which can assist the doctor in objectively saying whether the patient is normal or under risk of PD. The proposed work combines the eye-hand co-ordination behaviour with the DaTscan images in order to determine the risk of this disorder. Initially, eye-hand coordination level of the patient is assessed through a hardware module. Then, the DaTscan image is analysed and used to extract certain geometrical parameters which shall indicate the presence of PD. These parameters are then finally fed into a Multi-Layer Perceptron Neural Network using Levenberg-Marquardt (LM) Back propagation training algorithm. Experimental results indicate that the proposed system exhibits an accuracy of around 93%.