| Authors | Sayed Qasim Alavi,Sarah Jomhoori |
| Journal | Journal of Mahani Mathematical Research Center |
| Page number | 1-19 |
| Serial number | 14 |
| Volume number | 2 |
| Paper Type | Full Paper |
| Published At | 2025 |
| Journal Grade | Scientific - promoting |
| Journal Type | Typographic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | isc |
Abstract
In this article, we introduce a new estimator of entropy of
continuous random variables. Bias, variance and the mean squared error
of the new estimator are obtained and compared with the other existing
estimators. The results show that the proposed estimator has a lower
mean squared error than its competitors. Then, we propose some goodness of fit tests for Weibull distribution based on the entropy estimators.
To assess the effectiveness of the proposed tests, we utilize Monte Carlo
simulation to evaluate their power against eighteen different alternatives
with varying sample sizes. The results show that the tests are powerful
and we can use them in practice. Finally, two real datasets are considered
and modeled by the Weibull distribution.
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