Comparison between Conventional and Fuzzy Hypotheses Test Results for Parameter Treatment Effect for Heart Patients

Gandikota, N.S.K. and Hasan, M.H. and Jaafar, J. (2020) Comparison between Conventional and Fuzzy Hypotheses Test Results for Parameter Treatment Effect for Heart Patients. In: UNSPECIFIED.

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Abstract

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. © 2020 IEEE.

Item Type: Conference or Workshop Item (UNSPECIFIED)
Impact Factor: cited By 0
Uncontrolled Keywords: Acceptance tests; Intelligent computing; Population statistics, Fuzzy decision; Fuzzy hypothesis; Heart patients; Hypothesis tests; Null hypothesis; Parameter effects; Standard deviation; Treatment effects, Patient treatment
Depositing User: Ms Sharifah Fahimah Saiyed Yeop
Date Deposited: 25 Mar 2022 02:58
Last Modified: 25 Mar 2022 02:58
URI: http://scholars.utp.edu.my/id/eprint/29854

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