Inference for block progressive censored competing risks data from an inverted exponentiated exponential model
被引:5
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作者:
Wang, Liang
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机构:
Yunnan Normal Univ, Sch Math, Kunming, Peoples R China
Yunnan Normal Univ, Sch Math, 768, Juxian Rd, Kunming 650500, Peoples R ChinaYunnan Normal Univ, Sch Math, Kunming, Peoples R China
Wang, Liang
[1
,4
]
Wu, Shuo-Jye
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机构:
Tamkang Univ, Dept Stat, Taipei, TaiwanYunnan Normal Univ, Sch Math, Kunming, Peoples R China
Wu, Shuo-Jye
[2
]
Lin, Huizhong
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机构:
Yunnan Normal Univ, Sch Math, Kunming, Peoples R ChinaYunnan Normal Univ, Sch Math, Kunming, Peoples R China
Lin, Huizhong
[1
]
Tripathi, Yogesh Mani
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机构:
Indian Inst Technol Patna, Dept Math, Patna, IndiaYunnan Normal Univ, Sch Math, Kunming, Peoples R China
Tripathi, Yogesh Mani
[3
]
机构:
[1] Yunnan Normal Univ, Sch Math, Kunming, Peoples R China
[2] Tamkang Univ, Dept Stat, Taipei, Taiwan
[3] Indian Inst Technol Patna, Dept Math, Patna, India
[4] Yunnan Normal Univ, Sch Math, 768, Juxian Rd, Kunming 650500, Peoples R China
In this paper, reliability estimation for a competing risks model is discussed under a block progressive censoring scheme, which improves experimental efficiency through testing items under different testing facilities. When the lifetime of units follows an inverted exponentiated exponential distribution (IEED) and taking difference in testing facilities into account, various approaches are established for estimating unknown parameters, reliability performances and the differences in different testing facilities. Maximum likelihood estimators of IEED competing risks parameters together with existence and uniqueness are established, and the reliability performances and the difference in different testing facilities are also obtained in consequence. In addition, a hierarchical Bayes approach is proposed and the Metropolis-Hastings sampling algorithm is constructed for complex posterior computation. Finally, extensive simulation studies and a real data analysis are carried out to elaborate the performance of the methods, and the numerical results show that the proposed hierarchical Bayes model outperforms than classical likelihood method under block progressive censoring.
机构:
School of Mathematics and Statistics, Xi'an Jiaotong University
School of Mathematics, Yunnan Normal UniversitySchool of Mathematics and Statistics, Xi'an Jiaotong University
WANG Liang
MA Jin'ge
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机构:
School of Mathematics and Statistics, Xidian UniversitySchool of Mathematics and Statistics, Xi'an Jiaotong University
MA Jin'ge
SHI Yimin
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机构:
Department of Applied Mathematics, Northwestern Polytechnical UniversitySchool of Mathematics and Statistics, Xi'an Jiaotong University
机构:
Taibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia
Sohag Univ, Math Dept, Sohag 82524, EgyptTaibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia
Ahmed, Essam A.
Ali Alhussain, Ziyad
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机构:
Majmaah Univ, Coll Sci Al Zulfi, Dept Math, Al Majmaah, Saudi ArabiaTaibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia
Ali Alhussain, Ziyad
Salah, Mukhtar M.
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机构:
Majmaah Univ, Coll Sci Al Zulfi, Dept Math, Al Majmaah, Saudi ArabiaTaibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia
Salah, Mukhtar M.
Haj Ahmed, Hanan
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机构:
King Faisal Univ, Basic Sci Dept, Dammam, Saudi ArabiaTaibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia
Haj Ahmed, Hanan
Eliwa, M. S.
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机构:
Majmaah Univ, Coll Sci Al Zulfi, Dept Math, Al Majmaah, Saudi Arabia
Mansoura Univ, Dept Math, Fac Sci, Mansoura, EgyptTaibah Univ, Community Coll Khyber, Dept Adm & Financial Sci, Madinah, Saudi Arabia