使用EWMA统计数据进行基于时间的调查的最佳类型内存类型归算方法
Anoop Kumar1, Shashi Bhushan2, Abdullah Mohammed Alomair3
1Department of Statistics, Central University of Haryana, Mahendergarh, 123031, India.
Scientific reports
|October 29, 2024
概括
使用指数加权移动平均 (EWMA) 统计数据的新归算方法提高了基于时间的调查中缺少数据的准确性. 这些新的技术提高了可靠性,特别是在动态趋势的情况下.
科学领域:
- 统计 统计 统计 统计
- 调查方法 调查方法
- 数据科学数据科学数据科学
背景情况:
- 缺少数据是基于时间的调查中常见的挑战,影响数据的准确性和可靠性.
- 现有的归算方法可能会与动态趋势和非响应模式作斗争.
- 有效的归算对于有效的调查结果至关重要.
研究的目的:
- 为基于时间的调查提出最佳的内存类型归算方法.
- 使用指数加权移动平均 (EWMA) 统计数据进行增强的归算.
- 提供对应用这些新方法的最佳条件的见解.
主要方法:
- 开发使用EWMA统计数据的新型内存类型归算技术.
- 使用模拟数据集进行评估,使用不同的趋势和响应模式.
- 与现实调查数据的既定归算方法进行比较.
主要成果:
- 拟议的基于EWMA的方法与现有技术相比显示出更高的性能.
- 这些方法在发展趋势和动态响应模式的场景中尤其有效.
- 据观察,归算数据的准确性和可靠性得到了显著改善.
结论:
- 电子商务管理协会 (EWMA) 的统计数据有效地提高了基于时间的调查的内存类型归算方法.
- 提出的方法在动态的调查环境中提供了灵活性和更好的性能.
- 这项工作为处理纵向研究中缺少数据提供了一个强大的方法.
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