A test for fuzzy exponentiality based on Kullback-Leibler information

Author:

Kong Lingtao1

Affiliation:

1. School of Statistics, Shandong University of Finance and Economics, Jinan, China

Abstract

The exponential distribution has been widely used in engineering, social and biological sciences. In this paper, we propose a new goodness-of-fit test for fuzzy exponentiality using α-pessimistic value. The test statistics is established based on Kullback-Leibler information. By using Monte Carlo method, we obtain the empirical critical points of the test statistic at four different significant levels. To evaluate the performance of the proposed test, we compare it with four commonly used tests through some simulations. Experimental studies show that the proposed test has higher power than other tests in most cases. In particular, for the uniform and linear failure rate alternatives, our method has the best performance. A real data example is investigated to show the application of our test.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

Reference22 articles.

1. Testing fuzzy hypotheses using fuzzy data based on fuzzy test statistic;Arefi;J Uncertain Syst,2011

2. Testing exponentiality based on Kullback-Leibler information with progressively type II censored data;Balakrishnan;IEEE Transactions on Reliability,2007

3. Approximations of fuzzy numbers by trapezoidal fuzzy numbers preserving the ambiguity and value;Ban;Comput Math Appl,2011

4. Goodness-of-fit test for exponentiality based on Kullback-Leibler information;Choi;Commun Stat Simul Comput,2004

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