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A comparison of methods for detecting hot topics

机译:比较热门话题的方法

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摘要

In scientometrics for trend analysis, parameter choices for observing trends are often made ad hoc in past studies. For examples, different year spans might be used to create the time sequence and different indices were chosen for trend observation. However, the effectiveness of these choices was hardly known, quantitatively and comparatively. This work provides clues to better interpret the results when a certain choice was made. Specifically, by sorting research topics in decreasing order of interest predicted by a trend index and then by evaluating this ordering based on information retrieval measures, we compare a number of trend indices (percentage of increase vs. regression slope), trend formulations (simple trend vs. eigen-trend), and options (various year spans and durations for prediction) in different domains (safety agriculture and information retrieval) with different collection scales (72500 papers vs. 853 papers) to know which one leads to better trend observation. Our results show that the slope of linear regression on the time series performs constantly better than the others. More interestingly, this index is robust under different conditions and is hardly affected even when the collection was split into arbitrary (e.g., only two) periods. Implications of these results are discussed. Our work does not only provide a method to evaluate trend prediction performance for scientometrics, but also provides insights and reflections for past and future trend observation studies.
机译:在用于趋势分析的科学计量学中,用于观察趋势的参数选择通常是在过去的研究中临时制定的。例如,可以使用不同的年份跨度来创建时间序列,并选择不同的指数进行趋势观察。但是,这些选择的有效性在数量和比较上都鲜为人知。这项工作提供了一些线索,可以在做出特定选择时更好地解释结果。具体来说,通过按趋势指数预测的降序对研究主题进行排序,然后根据信息检索措施评估此排序,我们比较了多个趋势指数(增长百分比与回归斜率的百分比),趋势表述(简单趋势)相对于特征趋势),以及不同领域(安全性农业和信息检索)的不同领域(安全农业和信息检索)的选项(不同的预测年份和预测持续时间)(72500篇论文与853篇论文),以了解哪种因素可以更好地观察趋势。我们的结果表明,线性回归在时间序列上的斜率始终比其他序列好。更有趣的是,该索引在不同条件下是健壮的,即使将集合分为任意(例如,仅两个)周期也几乎不会受到影响。讨论了这些结果的含义。我们的工作不仅提供了一种评估科学计量学趋势预测性能的方法,而且还为过去和将来的趋势观察研究提供了见解和反思。

著录项

  • 来源
    《Scientometrics》 |2009年第1期|73-90|共18页
  • 作者单位

    Information Technology Center, National Taiwan Normal University, No.162, Sec. 1, Heping East Road, Taipei City, Taiwan;

    Taipei Municipal University of Education, Taipei, Taiwan;

    Biotechnology Industry Study Centre, Taiwan Institute of Economic Research, Taipei, Taiwan;

    Science & Technology Policy Research and Information Center, National Applied Research Laboratories, Taipei, Taiwan;

    Science & Technology Policy Research and Information Center, National Applied Research Laboratories, Taipei, Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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