MRET:修改的递归消除技术,用于对作者评估参数进行排名
Ghulam Mustafa1, Abid Rauf1, Muhammad Tanvir Afzal2
1Department of Computer Science, University of Engineering and Technology, Taxila, Pakistan.
PloS one
|June 13, 2024
概括
这项研究使用深度学习对作者评估指标进行了排名,发现正常化的h指数最为重要. 三角度平均 (TM) 在统计分析中表现出色,用于识别数学奖项获奖者.
科学领域:
- 圣经计量学和科学计量学
- 人工智能在研究评估中的作用
- 学术影响分析研究.
背景情况:
- 评估学术贡献需要有效的作者评估指标.
- 现有的指标,如出版物和引用数量以及h指数,都有局限性.
- 优先考虑最具影响力的指标在众多选择中至关重要.
研究的目的:
- 使用深度学习对作者评估参数进行分类和排名.
- 确定评估学术影响的最重要的参数.
- 分析64个不同的作者评估指标之间的相关性和依赖性.
主要方法:
- 使用多层感知器 (MLP) 分类器用于模式识别和排名.
- 采用修改后的递归消除技术,为参数赋予重要性得分.
- 通过七种方法 (如算术平均值,平均值) 进行统计分析,结合参数.
- 分析了排名参数组合中的获奖事件.
主要成果:
- 在64个参数中,规范化h指数获得了最高的重要性得分.
- 三角度平均值 (TM) 在分析中表现优于其他统计模型.
- 将M指数和FG指数等指标与其他指标相结合,为识别获奖者提供了出色的结果.
结论:
- 深度学习有效地对作者评估参数进行排名.
- 规范化的h指数是学术影响的高效指标.
- 三角度平均值和特异指数组合对未来的研究评估有希望.
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