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International Journal of Machine Learning and Cybernetics
基本信息
期刊名称 International Journal of Machine Learning and Cybernetics
INT J MACH LEARN CYB
期刊ISSN 1868-8071
期刊官方网站 https://www.springer.com/13042
是否OA No
出版商 Springer Science + Business Media
出版周期 12 issues per year
文章处理费 登录后查看
始发年份 2010
年文章数 295
影响因子 3.1(2023)  scijournal影响因子  greensci影响因子
中科院SCI期刊分区
大类学科 小类学科 Top 综述
工程技术3区 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE 计算机:人工智能3区
CiteScore
CiteScore排名 CiteScore SJR SNIP
学科 排名 百分位 7.9 0.988 1.217
Computer Science
Computer Vision and Pattern Recognition
21/106 80%
Computer Science
Software
85/407 79%
Computer Science
Artificial Intelligence
84/350 76%
补充信息
自引率 12.9%
H-index 30
SCI收录状况 Science Citation Index Expanded
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网友分享审稿时间 数据统计中,敬请期待。
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PubMed Central (PMC) http://www.ncbi.nlm.nih.gov/nlmcatalog?term=1868-8071%5BISSN%5D
投稿指南
期刊投稿网址 https://submission.springernature.com/new-submission/13042/3
收稿范围
Cybernetics is concerned with describing complex interactions and interrelationships between systems which are omnipresent in our daily life. Machine Learning discovers fundamental functional relationships between variables and ensembles of variables in systems. The merging of the disciplines of Machine Learning and Cybernetics is aimed at the discovery of various forms of interaction between systems through diverse mechanisms of learning from data.

The International Journal of Machine Learning and Cybernetics (IJMLC) focuses on the key research problems emerging at the junction of machine learning and cybernetics and serves as a broad forum for rapid dissemination of the latest advancements in the area. The emphasis of IJMLC is on the hybrid development of machine learning and cybernetics schemes inspired by different contributing disciplines such as engineering, mathematics, cognitive sciences, and applications. New ideas, design alternatives, implementations and case studies pertaining to all the aspects of machine learning and cybernetics fall within the scope of the IJMLC.

Key research areas to be covered by the journal include:

Machine Learning for modeling interactions between systems
Pattern Recognition technology to support discovery of system-environment interaction
Control of system-environment interactions
Biochemical interaction in biological and biologically-inspired systems
Learning for improvement of communication schemes between systems
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投稿指南 https://link.springer.com/journal/13042/submission-guidelines
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