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  5. Machine learning in medical applications: A review of state-of-the-art methods

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Article
English
2022

Machine learning in medical applications: A review of state-of-the-art methods

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0 Files

English
2022
Computers in Biology and Medicine
Vol 145
DOI: 10.1016/j.compbiomed.2022.105458

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Amir Gandomi
Amir Gandomi

University of Techology Sdyney

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Mohammad Shehab
Laith Abualigah
Qusai Shambour
+4 more

Abstract

Applications of machine learning (ML) methods have been used extensively to solve various complex challenges in recent years in various application areas, such as medical, financial, environmental, marketing, security, and industrial applications. ML methods are characterized by their ability to examine many data and discover exciting relationships, provide interpretation, and identify patterns. ML can help enhance the reliability, performance, predictability, and accuracy of diagnostic systems for many diseases. This survey provides a comprehensive review of the use of ML in the medical field highlighting standard technologies and how they affect medical diagnosis. Five major medical applications are deeply discussed, focusing on adapting the ML models to solve the problems in cancer, medical chemistry, brain, medical imaging, and wearable sensors. Finally, this survey provides valuable references and guidance for researchers, practitioners, and decision-makers framing future research and development directions.

How to cite this publication

Mohammad Shehab, Laith Abualigah, Qusai Shambour, Muhannad A. Abu‐Hashem, Mohd Khaled Yousef Shambour, Ahmed Izzat Alsalibi, Amir Gandomi (2022). Machine learning in medical applications: A review of state-of-the-art methods. Computers in Biology and Medicine, 145, pp. 105458-105458, DOI: 10.1016/j.compbiomed.2022.105458.

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Publication Details

Type

Article

Year

2022

Authors

7

Datasets

0

Total Files

0

Language

English

Journal

Computers in Biology and Medicine

DOI

10.1016/j.compbiomed.2022.105458

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