心脏病人参数治疗效果的常规与模糊假设检验结果比较

Naga Sunil Kumar Gandikota, M. H. Hasan, J. Jaafar
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引用次数: 0

摘要

在传统的假设检验中,假设是清晰的。本文考虑了在总体标准差已知的情况下,具有模糊数据的正态总体中未知均值的假设检验。本文的目的是通过双向方差分析来区分各种参数对临床心脏病患者的影响,在这个模糊检验中,我们将对具有模糊p值的心脏病患者临床资料的各种参数做出拒绝或接受原假设的模糊决策,并将结果与常规假设检验结果进行比较。这些结果将成为新患者(与老患者相同的特征)更好地治疗他们的基准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison between Conventional and Fuzzy Hypotheses Test Results for Parameter Treatment Effect for Heart Patients
In the traditional hypotheses test, hypotheses are crisp. In this paper, we consider the hypotheses test for unknown mean in normal populations with fuzzy data when the standard deviation of the population is known. This paper aims to distinguish various parameter effects on clinical Heart Patients with Two-way Anova, and in this fuzzy test, we will make a fuzzy decision for rejection or acceptance null hypothesis on various parameters of clinical data of Heart Patients with Fuzzy p-value and compared the results with the conventional hypothesis test results. These results will be a benchmark for new patients (same characteristics as the old patients) to treat them in a better way.
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