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Medical Big Data: Neurological Diseases Diagnosis Through Medical Data Analysis - 2016

Medical Big Data: Neurological Diseases Diagnosis Through Medical Data Analysis

Research Area:  Machine Learning

Abstract:

Diagnosis of neurological diseases is a growing concern and one of the most difficult challenges for modern medicine. According to the World Health Organisation-s recent report, neurological disorders, such as epilepsy, Alzheimer-s disease and stroke to headache, affect up to one billion people worldwide. An estimated 6.8 million people die every year as a result of neurological disorders. Current diagnosis technologies (e.g. magnetic resonance imaging, electroencephalogram) produce huge quantity data (in size and dimension) for detection, monitoring and treatment of neurological diseases. In general, analysis of those medical big data is performed manually by experts to identify and understand the abnormalities. It is really difficult task for a person to accumulate, manage, analyse and assimilate such large volumes of data by visual inspection. As a result, the experts have been demanding computerised diagnosis systems, called “computer-aided diagnosis (CAD)” that can automatically detect the neurological abnormalities using the medical big data. This system improves consistency of diagnosis and increases the success of treatment, save lives and reduce cost and time. Recently, there are some research works performed in the development of the CAD systems for management of medical big data for diagnosis assessment. This paper explores the challenges of medical big data handing and also introduces the concept of the CAD system how it works. This paper also provides a survey of developed CAD methods in the area of neurological diseases diagnosis. This study will help the experts to have some idea and understanding how the CAD system can assist them in this point.

Keywords:  

Author(s) Name:  Siuly Siuly & Yanchun Zhang

Journal name:  Data Science and Engineering

Conferrence name:  

Publisher name:  Springer

DOI:  10.1007/s41019-016-0011-3

Volume Information:  volume 1, pages54–64 (2016)