基于以不平等样本的最大排序集采样为基础的反向库马拉斯瓦米分布的统计推断和数据分析.
1Faculty of Graduate Studies for Statistical Research, Cairo University, Giza, 12613, Egypt.
Scientific reports
|October 25, 2024
概括
使用不平等样本的最大排序集采样 (MRSSU) 改善了反向库马拉斯瓦米分布的参数估计. 这种先进的排序集采样方法在模拟和现实数据分析中比传统的排序集采样 (RSS) 提供了更高的性能.
科学领域:
- 统计 统计 统计 统计
- 可能性理论概率理论.
- 统计建模 统计建模
背景情况:
- 排序集采样 (RSS) 是一种高效的数据收集技术.
- 使用不平等样本的最大排序集采样 (MRSSU) 是RSS的修改.
- 对分布的参数估计在统计分析中至关重要.
研究的目的:
- 使用MRSSU和RSS设计估计反向库马拉斯瓦米分布的参数.
- 为了比较MRSSU和RSS估计技术的性能.
- 调查最大概率和贝叶斯估计方法.
主要方法:
- 使用了最大概率估计 (MLE) 和贝叶斯估计.
- 在贝叶斯分析中使用非信息化 (杰弗里斯) 和信息化 (马) 的先验.
- 应用二次误差和最小预期损失函数.
- 使用根平均平方误差和相对偏差进行模拟研究.
- 在贝叶斯点估计中使用了大都会 - 黑斯廷斯算法.
主要成果:
- 而MRSSU估计器的性能明显优于RSS估计器.
- 这种改进在模拟研究和真实地质数据分析中是一致的.
- 该研究评估了不同采样设计下的参数估计准确性.
结论:
- 与RSS相比,MRSSU是一种更有效的采样设计,用于参数估计,特别是对于更大的样本大小.
- 这些发现适用于各种领域的统计建模和数据分析.
- 在MRSSU设计下,反转的Kumaraswamy分布参数估计是稳定的.
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