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LED Lighting System Reliability Modeling and Inference via Random Effects Gamma Process and Copula Function

机译:通过随机效应伽马过程和Copula函数进行LED照明系统可靠性建模和推断

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摘要

Light emitting diode (LED) lamp has attracted increasing interest in the field of lighting systems due to its low energy and long lifetime. For different functions (i.e., illumination and color), it may have two or more performance characteristics. When the multiple performance characteristics are dependent, it creates a challenging problem to accurately analyze the system reliability. In this paper, we assume that the system has two performance characteristics, and each performance characteristic is governed by a random effects Gamma process where the random effects can capture the unit to unit differences. The dependency of performance characteristics is described by a Frank copula function. Via the copula function, the reliability assessment model is proposed. Considering the model is so complicated and analytically intractable, the Markov chain Monte Carlo (MCMC) method is used to estimate the unknown parameters. A numerical example about actual LED lamps data is given to demonstrate the usefulness and validity of the proposed model and method.
机译:发光二极管(LED)灯由于其低能量和长寿命而在照明系统领域引起了越来越多的兴趣。对于不同的功能(即照明和颜色),它可能具有两个或多个性能特征。当多个性能特征相互依赖时,要准确分析系统可靠性会带来挑战。在本文中,我们假设系统具有两个性能特征,并且每个性能特征都由随机效应Gamma过程控制,其中随机效应可以捕获单位之间的差异。性能特征的依赖性由弗兰克·科普拉拉函数描述。通过copula函数,提出了可靠性评估模型。考虑到该模型是如此复杂且难以分析,因此使用马尔可夫链蒙特卡罗(MCMC)方法估计未知参数。给出了有关实际LED灯数据的数值示例,以证明所提出的模型和方法的有用性和有效性。

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