Machine Learning for Health Informatics Machine Learning for Health Informatics

Machine Learning for Health Informatics

State-of-the-Art and Future Challenges

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출판사 설명

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.

장르
컴퓨터 및 인터넷
출시일
2016년
12월 9일
언어
EN
영어
길이
503
페이지
출판사
Springer International Publishing
판매자
Springer Nature B.V.
크기
7
MB
Artificial Intelligence in Medicine Artificial Intelligence in Medicine
2017년
Methods in Biomedical Informatics Methods in Biomedical Informatics
2013년
Data Integration in the Life Sciences Data Integration in the Life Sciences
2018년
DEEP LEARNING IN BIOLOGY AND MEDICINE DEEP LEARNING IN BIOLOGY AND MEDICINE
2022년
Machine Learning for Healthcare Applications Machine Learning for Healthcare Applications
2021년
Trends and Applications in Knowledge Discovery and Data Mining Trends and Applications in Knowledge Discovery and Data Mining
2020년
xxAI - Beyond Explainable AI xxAI - Beyond Explainable AI
2022년
Biomedical Informatics Biomedical Informatics
2014년
Computer-Human Interaction Research and Applications Computer-Human Interaction Research and Applications
2023년
Machine Learning and Knowledge Extraction Machine Learning and Knowledge Extraction
2023년
Computer-Human Interaction Research and Applications Computer-Human Interaction Research and Applications
2022년
Machine Learning and Knowledge Extraction Machine Learning and Knowledge Extraction
2022년