在COVID-19大流行期间,对心理社会状况应用的量度进行了泛化双尾假设测试
Nataliya Chukhrova1, Arne Johannssen1
1University of Hamburg Hamburg Germany.
概括
本研究引入了使用模糊假设的泛化双尾标志测试,以克服标准非参数测试的局限性. 增强的模糊标志测试提供了更好的统计能力,并有效地处理不准确的数据.
科学领域:
- 统计 统计 统计 统计
- 非参数统计方法 非参数统计方法
背景情况:
- 当数据分布未知时,非参数测试是有价值的.
- 标准的双尾标志测试在统计能力和处理不准确的假设方面存在局限性.
研究的目的:
- 通过结合模糊假设来概括双尾符号测试.
- 为了减轻标准标志测试的局限性,特别是不确定的或不准确的数据.
- 为了提高标志测试的适用性和统计能力.
主要方法:
- 将模糊的假设嵌入到双尾符号测试框架中.
- 将测试泛化,以适应对底层量数的分数的语言陈述.
- 通过现实世界的数据 (COVID-19期间的心理社会状态) 进行全面的案例研究.
主要成果:
- 一般化的模糊符号测试克服了标准测试的局限性.
- 它结合了诸如处理假设类型之间的权衡和标准化会员功能等优点.
- 该案例研究表明,一般化测试比标准的双尾标志测试优越.
结论:
- 一般化的双尾标志测试有效地解决了假设中的不确定性和不精确性.
- 它提供了一个比传统的标志测试更强大,更强大的替代方案.
- 这种方法避免了与模糊假设测试相关的常见复杂性.
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