An algorithm for reliability analysis of phased-mission systems

被引:71
作者
Ma, Y
Trivedi, KS
机构
[1] Duke Univ, Ctr Adv Comp & Commun, Dept Comp Sci, Durham, NC 27708 USA
[2] Duke Univ, Ctr Adv Comp & Commun, Dept Elect & Comp Engn, Durham, NC 27708 USA
关键词
binary decision diagrams (BDD); Boolean algebraic methods; cold/hot spares; fault trees; latent failure; phased-mission systems; SHARPE; software reliability; software reusability; transient analysis;
D O I
10.1016/S0951-8320(99)00033-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The purpose of this paper is to describe an efficient Boolean algebraic algorithm that provides exact solution to the unreliability of a multi-phase mission system where the configurations are described through fault trees. The algorithm extends and improves the Boolean method originally proposed by Somani and Trivedi. By using the Boolean algebraic method, we provide an efficient modeling approach which avoids the state space explosion and the mapping problems that are encountered by the Markov chain approach. To calculate the exact solution of the phased-mission system with deterministic phase durations, we introduce the sum of disjoint phase products (SDPP) formula, which is a phased-extension of the sum of disjoint products (SDP) formula. Computationally, the algorithm is quite efficient because it calls an SDP generation algorithm in the early stage of the SDPP computation. Tn this way, the phase products generated in the early stage of the SDPP formula are guaranteed to be disjoint. Consequently, the number of the intermediate phase products is greatly reduced. In this paper, we also consider the transient analysis of the phased-mission system. Special care is needed to account for the possible latent failures at the mission phase change times. If there are more stringent success criteria just after a mission phase change time, an unreliability jump would occur at that time. Finally, the algorithm has been implemented in the software package SHARPE. With SHARPE, the complexities of the phased-mission system is made transparent to the potential users. The user can conveniently specify a phased-mission model at a high level (through fault trees) and analyze the system quantitatively. (C) 1999 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:157 / 170
页数:14
相关论文
共 31 条
[1]   IMPROVED ALGORITHM FOR NETWORK RELIABILITY [J].
ABRAHAM, JA .
IEEE TRANSACTIONS ON RELIABILITY, 1979, 28 (01) :58-61
[2]  
AKERS SB, 1978, IEEE T COMPUT, V27, P509, DOI 10.1109/TC.1978.1675141
[3]   QUANTITATIVE RELIABILITY EVALUATION OF REPAIRABLE PHASED-MISSION SYSTEMS USING MARKOV APPROACH [J].
ALAM, M ;
ALSAGGAF, UM .
IEEE TRANSACTIONS ON RELIABILITY, 1986, 35 (05) :498-503
[4]  
[Anonymous], 1990, DISTRIBUTED COMPUTIN
[5]  
BENNETTS RG, 1975, IEEE T RELIAB, V24, P194
[6]  
Biggerstaff T.J., 1989, Software reusability: vol. 1
[7]  
BRYANT RE, 1986, IEEE T COMPUT, V35, P677, DOI 10.1109/TC.1986.1676819
[8]  
BRYANT RE, 1992, COMPUT SURV, V24, P293, DOI 10.1145/136035.136043
[9]   PHASED MISSION ANALYSIS - REVIEW OF NEW DEVELOPMENTS AND AN APPLICATION [J].
BURDICK, GR ;
FUSSELL, JB ;
RASMUSON, DM ;
WILSON, JR .
IEEE TRANSACTIONS ON RELIABILITY, 1977, 26 (01) :43-49
[10]  
Colbourn C.J., 1987, The combinatorics of network reliability