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Machine learning in medical applications: A review of state-of-the-art methods
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 …
complex challenges in recent years in various application areas, such as medical, financial …
[HTML][HTML] Machine learning-based approach: Global trends, research directions, and regulatory standpoints
The field of machine learning (ML) is sufficiently young that it is still expanding at an
accelerating pace, lying at the crossroads of computer science and statistics, and at the core …
accelerating pace, lying at the crossroads of computer science and statistics, and at the core …
Artificial intelligence in healthcare
Artificial intelligence (AI) is gradually changing medical practice. With recent progress in
digitized data acquisition, machine learning and computing infrastructure, AI applications …
digitized data acquisition, machine learning and computing infrastructure, AI applications …
A review of feature selection and feature extraction methods applied on microarray data
ZM Hira, DF Gillies - Advances in bioinformatics, 2015 - Wiley Online Library
We summarise various ways of performing dimensionality reduction on high‐dimensional
microarray data. Many different feature selection and feature extraction methods exist and …
microarray data. Many different feature selection and feature extraction methods exist and …
[HTML][HTML] Providing self-led mental health support through an artificial intelligence–powered chat bot (Leora) to Meet the demand of mental health care
Digital mental health services are becoming increasingly valuable for addressing the global
public health burden of mental ill-health. There is significant demand for scalable and …
public health burden of mental ill-health. There is significant demand for scalable and …
A review of microarray datasets and applied feature selection methods
Microarray data classification is a difficult challenge for machine learning researchers due to
its high number of features and the small sample sizes. Feature selection has been soon …
its high number of features and the small sample sizes. Feature selection has been soon …
[PDF][PDF] Applications of artificial intelligence in machine learning: review and prospect
Machine learning is one of the most exciting recent technologies in Artificial Intelligence.
Learning algorithms in many applications that's we make use of daily. Every time a web …
Learning algorithms in many applications that's we make use of daily. Every time a web …
[PDF][PDF] Using deep learning to enhance cancer diagnosis and classification
Using automated computer tools and in particular machine learning to facilitate and
enhance medical analysis and diagnosis is a promising and important area. In this paper …
enhance medical analysis and diagnosis is a promising and important area. In this paper …
A survey on filter techniques for feature selection in gene expression microarray analysis
A plenitude of feature selection (FS) methods is available in the literature, most of them
rising as a need to analyze data of very high dimension, usually hundreds or thousands of …
rising as a need to analyze data of very high dimension, usually hundreds or thousands of …
A review of feature selection techniques in bioinformatics
Feature selection techniques have become an apparent need in many bioinformatics
applications. In addition to the large pool of techniques that have already been developed in …
applications. In addition to the large pool of techniques that have already been developed in …