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An Overview on Evaluating and Predicting Scholarly Article Impact

机译:评价和预测学术论文影响概述

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Scholarly article impact reflects the significance of academic output recognised by academic peers, and it often plays a crucial role in assessing the scientific achievements of researchers, teams, institutions and countries. It is also used for addressing various needs in the academic and scientific arena, such as recruitment decisions, promotions, and funding allocations. This article provides a comprehensive review of recent progresses related to article impact assessment and prediction. The review starts by sharing some insight into the article impact research and outlines current research status. Some core methods and recent progress are presented to outline how article impact metrics and prediction have evolved to consider integrating multiple networks. Key techniques, including statistical analysis, machine learning, data mining and network science, are discussed. In particular, we highlight important applications of each technique in article impact research. Subsequently, we discuss the open issues and challenges of article impact research. At the same time, this review points out some important research directions, including article impact evaluation by considering Conflict of Interest, time and location information, various distributions of scholarly entities, and rising stars.
机译:学术论文的影响力反映了学术界认可的学术成果的重要性,并且在评估研究人员,团队,机构和国家的科学成就中通常起着至关重要的作用。它还可用于满足学术和科学领域的各种需求,例如招聘决策,晋升和资金分配。本文提供了与文章影响评估和预测相关的最新进展的全面综述。回顾首先分享对文章影响研究的一些见解,并概述当前的研究现状。介绍了一些核心方法和最新进展,以概述文章影响指标和预测如何演变以考虑集成多个网络。讨论了关键技术,包括统计分析,机器学习,数据挖掘和网络科学。特别是,我们重点介绍了每种技术在文章影响研究中的重要应用。随后,我们讨论了文章影响研究的未解决问题和挑战。同时,这篇综述指出了一些重要的研究方向,包括考虑利益冲突,时间和位置信息,学术实体的各种分布以及后起之秀的文章影响评估。

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