Machine Learning in Multiple Sclerosis

Машинное обучение при рассеянном склерозе
Bas Jasperse, Frederik Barkhof
2023-01-01

MRIlesion segmentationmachine learningmultiple sclerosisprognostic subtyping
Abstract Multiple sclerosis (MS) is characterized by inflammatory activity and neurodegeneration, leading to the accumulation of damage to the central nervous system resulting in the accumulation of disability. MRI depicts an important part of the pathology of this disease and therefore plays a key part in diagnosis and disease monitoring. Still, major challenges exist with regard to the differential diagnosis, adequate monitoring of disease progression, quantification of CNS damage, and prediction of disease progression. Machine learning techniques have been employed in an attempt to overcome these challenges. This chapter aims to give an overview of how machine learning techniques are employed in MS with applications for diagnostic classification, lesion segmentation, improved visualization of relevant brain pathology, characterization of neurodegeneration, and prognostic subtyping.
1
MRI is central to MS diagnosis and disease monitoring but remains limited for differential diagnosis, progression assessment, CNS damage quantification, and prognosis.
2
Machine learning is applied in MS to support diagnostic classification, lesion segmentation, and improved visualization of relevant brain pathology.
3
Machine learning methods are used to characterize neurodegeneration and identify prognostic subtypes in multiple sclerosis.
4
Multiple sclerosis causes inflammatory and neurodegenerative central nervous system damage that accumulates and leads to disability.

Multiple sclerosis and its MRI-visible central nervous system pathology

Machine-learning-based diagnostic classification, lesion segmentation, visualization of brain pathology, characterization of neurodegeneration, and prognostic subtyping in MS

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2023-01-01
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Bas Jasperse
Frederik Barkhof
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