Machine and cognitive intelligence for human health: systematic review.

Q1 Computer Science
Xieling Chen, Gary Cheng, Fu Lee Wang, Xiaohui Tao, Haoran Xie, Lingling Xu
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引用次数: 12

Abstract

Brain informatics is a novel interdisciplinary area that focuses on scientifically studying the mechanisms of human brain information processing by integrating experimental cognitive neuroscience with advanced Web intelligence-centered information technologies. Web intelligence, which aims to understand the computational, cognitive, physical, and social foundations of the future Web, has attracted increasing attention to facilitate the study of brain informatics to promote human health. A large number of articles created in the recent few years are proof of the investment in Web intelligence-assisted human health. This study systematically reviews academic studies regarding article trends, top journals, subjects, countries/regions, and institutions, study design, artificial intelligence technologies, clinical tasks, and performance evaluation. Results indicate that literature is especially welcomed in subjects such as medical informatics and health care sciences and service. There are several promising topics, for example, random forests, support vector machines, and conventional neural networks for disease detection and diagnosis, semantic Web, ontology mining, and topic modeling for clinical or biomedical text mining, artificial neural networks and logistic regression for prediction, and convolutional neural networks and support vector machines for monitoring and classification. Additionally, future research should focus on algorithm innovations, additional information use, functionality improvement, model and system generalization, scalability, evaluation, and automation, data acquirement and quality improvement, and allowing interaction. The findings of this study help better understand what and how Web intelligence can be applied to promote healthcare procedures and clinical outcomes. This provides important insights into the effective use of Web intelligence to support informatics-enabled brain studies.

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人类健康的机器和认知智能:系统综述。
脑信息学是将实验认知神经科学与先进的以网络智能为中心的信息技术相结合,科学研究人脑信息处理机制的新兴交叉学科。网络智能旨在了解未来网络的计算、认知、物理和社会基础,越来越受到人们的关注,以促进大脑信息学的研究,促进人类健康。最近几年出现的大量文章证明了在网络智能辅助人类健康方面的投资。本研究从文章趋势、顶级期刊、学科、国家/地区、机构、研究设计、人工智能技术、临床任务、绩效评估等方面对学术研究进行系统回顾。结果表明,在医学信息学和卫生保健科学与服务等学科中,文献特别受欢迎。有几个很有前景的主题,例如用于疾病检测和诊断的随机森林、支持向量机和传统神经网络,用于临床或生物医学文本挖掘的语义Web、本体挖掘和主题建模,用于预测的人工神经网络和逻辑回归,以及用于监测和分类的卷积神经网络和支持向量机。此外,未来的研究应集中在算法创新、附加信息使用、功能改进、模型和系统泛化、可扩展性、评估和自动化、数据获取和质量改进以及允许交互等方面。本研究的发现有助于更好地理解Web智能可以应用于促进医疗保健程序和临床结果的内容和方式。这为有效利用网络智能来支持信息学支持的大脑研究提供了重要的见解。
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来源期刊
Brain Informatics
Brain Informatics Computer Science-Computer Science Applications
CiteScore
9.50
自引率
0.00%
发文量
27
审稿时长
13 weeks
期刊介绍: Brain Informatics is an international, peer-reviewed, interdisciplinary open-access journal published under the brand SpringerOpen, which provides a unique platform for researchers and practitioners to disseminate original research on computational and informatics technologies related to brain. This journal addresses the computational, cognitive, physiological, biological, physical, ecological and social perspectives of brain informatics. It also welcomes emerging information technologies and advanced neuro-imaging technologies, such as big data analytics and interactive knowledge discovery related to various large-scale brain studies and their applications. This journal will publish high-quality original research papers, brief reports and critical reviews in all theoretical, technological, clinical and interdisciplinary studies that make up the field of brain informatics and its applications in brain-machine intelligence, brain-inspired intelligent systems, mental health and brain disorders, etc. The scope of papers includes the following five tracks: Track 1: Cognitive and Computational Foundations of Brain Science Track 2: Human Information Processing Systems Track 3: Brain Big Data Analytics, Curation and Management Track 4: Informatics Paradigms for Brain and Mental Health Research Track 5: Brain-Machine Intelligence and Brain-Inspired Computing
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