对于分类数据的多变量里埃序列的非参数回归估计器
Muhammad Zulfadhli1, I Nyoman Budiantara1, Vita Ratnasari1
1Department of Statistics, Faculty of Science and Data Analytics, Institut Teknologi Sepuluh Nopember, Kampus ITS-Sukolilo, Surabaya 60111, Indonesia.
MethodsX
|February 17, 2025
概括
这项研究引入了一种新的福里埃序列估计器,用于使用分类数据进行非参数回归,其性能优于二进制后勤回归. 新方法提高了对分类响应变量的估计准确性.
科学领域:
- 统计 统计 统计 统计
- 非参数回归的非参数回归
- 分类数据分析 分类数据分析
背景情况:
- 富里埃序列估计器对于非参数回归中的定量数据很受欢迎.
- 现有的方法与分类响应变量作斗争.
- 在处理类别数据时,存在一个空白,使用富里埃序列估计器来估计.
研究的目的:
- 为分类数据开发一个多变量里埃序列非参数回归估计器.
- 适应福里埃序列方法对有分类的响应变量.
- 为了解决对定性响应数据的当前方法的局限性.
主要方法:
- 进行了文学和理论研究.
- 为分类数据开发了一个新的富里埃序列估计器.
- 使用了最大概率估计和牛顿-拉普森方法.
主要成果:
- 与二进制逻辑回归相比,提出的福利埃数列方法显示出更高的估计准确性.
- 在两个应用数据集中观察到更好的结果.
- 关键绩效指标如偏差,AUC和Press'Q值显示显著改善.
结论:
- 富里埃序列方法有效地模拟了逻辑函数和具有重复模式的预测变量之间的关系.
- 这种非参数回归方法为分类数据提供了比传统的二进制逻辑回归更好的估计.
- 开发的估计器为分析非参数设置中的分类响应变量提供了有价值的工具.
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