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EPJ Data Science

eISSN: 2193-1127pISSN: 2193-1127
JournalOpen Access

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宗旨和范围

The 21st century is currently witnessing the establishment of data-driven science as a complementary approach to the traditional hypothesis-driven method. This (r)evolution accompanying the paradigm shift from reductionism to complex systems sciences has already largely transformed the natural sciences and is about to bring the same changes to the techno-socio-economic sciences, viewed broadly.EPJ Data Science offers a publication platform to address this evolution by bringing together all academic disciplines concerned with the same challenges:how to extract meaningful data from systems with ever increasing complexityhow to analyse them in a way that allows new insightshow to generate data that is needed but not yet availablehow to find new empirical laws, or more fundamental theories, concerning how any natural or artificial (complex) systems workThis is accomplished through experiments and simulations, by data mining or by enriching data in a novel way. The focus of this journal is on conceptually new scientific methods for analyzing and synthesizing massive data sets, and on fresh ideas to link these insights to theory building and corresponding computer simulations. As such, articles mainly applying classical statistics tools to data sets or with a focus on programming and related software issues are outside the scope of this journal.EPJ Data Science covers a broad range of research areas and applications and particularly encourages contributions from techno-socio-economic systems, where it comprises those research lines that now regard the digital “tracks” of human beings as first-order objects for scientific investigation. Topics include, but are not limited to, human behavior, social interaction (including animal societies), economic and financial systems, management and business networks, socio-technical infrastructure, health and environmental systems, the science of science, as well as general risk and crisis scenario forecasting up to and including policy advice. Less

关键指标

CiteScore
6.5
Impact Factor
< 5
SJR
Q1Modeling and Simulation
SNIP
1.65

期刊详情

Indexed in the following public directories

  • Web of Science
  • Scopus
  • DOAJ
  • Inspec
  • SJR
概况
  • 出版商
    SPRINGER
  • 出版语言
    English
  • 出版频率
    Continuous publication
  • 论文处理费
    EUR 1390 | USD 1690 | GBP 1190
  • 发行日期
    13
  • 编辑审稿流程
    Anonymous peer review
基本信息
  • 出版语言
    English
  • Society/Institute/Sponsor
    Societa Italiana di Fisica; EDP Sciences
  • 出版频率
    Continuous publication
  • 创刊年份
    2012
  • Publisher URL
  • 网址
Publication Details
编辑审稿详情
作者须知
收起

Topics Covered on EPJ Data Science

年度发行情况

常见问题

EPJ Data Science 是从何时开始发行的? Faqs

EPJ Data Science 自2012开始发行至今。

EPJ Data Science 多久发行一次? Faqs

EPJ Data Science 为Continuous publication。

EPJ Data Science 的出版商是谁? Faqs

EPJ Data Science 的出版商是SPRINGER。

我在哪里查看 EPJ Data Science 的宗旨和范围? Faqs

查看 EPJ Data Science 的宗旨和范围,请点击此处。

我如何在意得辑上查看EPJ Data Science 的指标? Faqs

查看 EPJ Data Science 的指标,请单击此处。

EPJ Data Science 的 eISSN和pISSN 号分别是什么? Faqs

2193-1127 的 eISSN 为 2193-1127,pISSN 为 EPJ Data Science 。

该期刊重点关注哪些主题? Faqs

本期刊关注的主题范围广泛,包括 [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object], [object Object]。

为什么搜索适合我研究的期刊很重要? Faqs

选择与您研究领域紧密相关的期刊,有助于确保您的学术成果能够触及最合适的读者群体, 从而最大化您的学术影响力和对该领域的贡献。

对期刊的选择会影响我的学术事业吗? Faqs

当然。在知名期刊上发表论文可提升您的学术形象, 使您在获取资助、终身教职和其他职业机会方面更具竞争力。

只考虑具有高影响力的期刊是否明智? Faqs

虽然高影响力的期刊知名度高,但投稿竞争也相对激烈。因此, 关键在于权衡考虑期刊的影响因子与论文被接受的可能性。