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《International Journal of Data Science and Analytics》杂志封面
  • 所属分类:首页 > SCI期刊 > 工程技术
  • 期刊名: International Journal of Data Science and Analytics
  • 期刊名缩写:
  • 期刊ISSN:2364-415X
  • E-ISSN:2364-4168
  • 2025年影响因子/JCR分区:2.8/Q2 查看近年IF趋势图
  • 5年平均影响因子:2.8
  • 学科分类与版本:COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE - ESCI(N/A); COMPUTER SCIENCE, INFORMATION SYSTEMS - ESCI(N/A)
  • 出版周期:
  • 出版年份:
  • 出版国家或地区:
  • 出版商:SPRINGERNATURE
  • 年文章数:查看近年文章发表趋势图
  • 论著文章占比:94.00% [论著 ÷(论著 + 综述)]
  • 是否OA开放访问:
  • Gold OA文章占比:24.84%
  • 官方网站:
  • 投稿网址:
  • 编辑部地址:

《International Journal of Data Science and Analytics》中科院JCR分区

  • 2025年3月升级版:
  • 大类小类学科Top综述期刊
    计算机科学 3区
    COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE
    计算机:人工智能
    4区
    COMPUTER SCIENCE, INFORMATION SYSTEMS
    计算机:信息系统
    4区

  • 2023年12月升级版:
  • 未收录

    《International Journal of Data Science and Analytics》期刊简介:

    Data Science has been established as an important emergent scientific field and paradigm driving research evolution in such disciplines as statistics, computing science and intelligence science, and practical transformation in such domains as science, engineering, the public sector, business, social sci­ence, and lifestyle. The field encompasses the larger ar­eas of artificial intelligence, data analytics, machine learning, pattern recognition, natural language understanding, and big data manipulation. It also tackles related new sci­entific chal­lenges, ranging from data capture, creation, storage, retrieval, sharing, analysis, optimization, and vis­ualization, to integrative analysis across heterogeneous and interdependent complex resources for better decision-making, collaboration, and, ultimately, value creation.The International Journal of Data Science and Analytics (JDSA) brings together thought leaders, researchers, industry practitioners, and potential users of data science and analytics, to develop the field, discuss new trends and opportunities, exchange ideas and practices, and promote transdisciplinary and cross-domain collaborations. The jour­nal is composed of three streams: Regular, to communicate original and reproducible theoretical and experimental findings on data science and analytics; Applications, to report the significant data science applications to real-life situations; and Trends, to report expert opinion and comprehensive surveys and reviews of relevant areas and topics in data science and analytics.Topics of relevance include all aspects of the trends, scientific foundations, techniques, and applica­tions of data science and analytics, with a primary focus on:statistical and mathematical foundations for data science and analytics;understanding and analytics of complex data, human, domain, network, organizational, social, behavior, and system characteristics, complexities and intelligences;creation and extraction, processing, representation and modelling, learning and discovery, fusion and integration, presentation and visualization of complex data, behavior, knowledge and intelligence;data analytics, pattern recognition, knowledge discovery, machine learning, deep analytics and deep learning, and intelligent processing of various data (including transaction, text, image, video, graph and network), behaviors and systems;active, real-time, personalized, actionable and automated analytics, learning, computation, optimization, presentation and recommendation; big data architecture, infrastructure, computing, matching, indexing, query processing, mapping, search, retrieval, interopera­bility, exchange, and recommendation;in-memory, distributed, parallel, scalable and high-performance computing, analytics and optimization for big data;review, surveys, trends, prospects and opportunities of data science research, innovation and applications;data science applications, intelligent devices and services in scientific, business, governmental, cultural, behavioral, social and economic, health and medical, human, natural and artificial (including online/Web, cloud, IoT, mobile and social media) domains; andethics, quality, privacy, safety and security, trust, and risk of data science and analytics

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