Holzinger Machine Learning for Health Informatics

Machine Learning for Health Informatics

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State-of-the-Art and Future Challenges

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Beschreibung

Machine learning (ML) is the fastest growing field in computer science, and Health Informatics (HI) is amongst the greatest application challenges, providing future benefits in improved medical diagnoses, disease analyses, and pharmaceutical development. However, successful ML for HI needs a concerted effort, fostering integrative research between experts ranging from diverse disciplines from data science to visualization.
Tackling complex challenges needs both disciplinary excellence and cross-disciplinary networking without any boundaries. Following the HCI-KDD approach, in combining the best of two worlds, it is aimed to support human intelligence with machine intelligence.
This state-of-the-art survey is an output of the international HCI-KDD expert network and features 22 carefully selected and peer-reviewed chapters on hot topics in machine learning for health informatics; they discuss open problems and future challenges in order to stimulate further research and international progress in this field.


Machine learning (ML) is the fastest growing field in computer science, and Health Informatics (HI) is amongst the greatest application challenges, providing future benefits in improved medical diagnoses, disease analyses, and pharmaceutical development. However, successful ML for HI needs a concerted effort, fostering integrative research between experts ranging from diverse disciplines from data science to visualization.
Tackling complex challenges needs both disciplinary excellence and cross-disciplinary networking without any boundaries. Following the HCI-KDD approach, in combining the best of two worlds, it is aimed to support human intelligence with machine intelligence.
This state-of-the-art survey is an output of the international HCI-KDD expert network and features 22 carefully selected and peer-reviewed chapters on hot topics in machine learning for health informatics; they discuss open problems and future challenges in order to stimulate further research and international progress in this field.


Hot topics in machine learning for health informatics State-of-the-art survey and output of the international HCI-KDD expert network Discusses open problems and future challenges in order to stimulate further research and international progress in this field Includes supplementary material: sn.pub/extras

Autor*in

Andreas Holzinger

Themen in »Machine Learning for Health Informatics«

algorithms artificial intelligence big data classification data mining data science decision support systems deep learning health informatics Human-Computer Interaction (HCI) image processing Knowledge Discovery in Databases (KDD) knowledge-based systems machine learning Natural Language Processing (NLP)

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Details

ISBN: 9783319504780
Verlag: Springer International Publishing
Erscheinung: 09.12.2016

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