Applications of Neural Networks in Biomedical Data Analysis

Author:

Weiss RomanoORCID,Karimijafarbigloo SanazORCID,Roggenbuck DirkORCID,Rödiger StefanORCID

Abstract

Neural networks for deep-learning applications, also called artificial neural networks, are important tools in science and industry. While their widespread use was limited because of inadequate hardware in the past, their popularity increased dramatically starting in the early 2000s when it became possible to train increasingly large and complex networks. Today, deep learning is widely used in biomedicine from image analysis to diagnostics. This also includes special topics, such as forensics. In this review, we discuss the latest networks and how they work, with a focus on the analysis of biomedical data, particularly biomarkers in bioimage data. We provide a summary on numerous technical aspects, such as activation functions and frameworks. We also present a data analysis of publications about neural networks to provide a quantitative insight into the use of network types and the number of journals per year to determine the usage in different scientific fields.

Funder

Federal Ministry of Education and Research

Regenerationsprozesse des Alterns Regeneration processes of ageing - Graduate Research School of the Brandenburg University of Technology Cottbus - Senftenberg

Publisher

MDPI AG

Subject

General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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