Flowgraph Models in Reliability and Finite Automata
We discuss the interrelationship of two seemingly unrelated subjects: the theory of finite automata, and reliability theory, finite automata, more generally known as generalized transition graphs, are dasiaconvertedpsila to regular expressions by manipulating their pictorial representation, a direct...
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          | Published in | IEEE transactions on reliability Vol. 57; no. 2; pp. 355 - 359 | 
|---|---|
| Main Author | |
| Format | Journal Article | 
| Language | English | 
| Published | 
        New York
          IEEE
    
        01.06.2008
     The Institute of Electrical and Electronics Engineers, Inc. (IEEE)  | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 0018-9529 1558-1721  | 
| DOI | 10.1109/TR.2008.920865 | 
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| Abstract | We discuss the interrelationship of two seemingly unrelated subjects: the theory of finite automata, and reliability theory, finite automata, more generally known as generalized transition graphs, are dasiaconvertedpsila to regular expressions by manipulating their pictorial representation, a directed graph, by elimination of its states one-by-one until two states are left, connected by an edge whose label is a regular expression equivalent to the initially given finite automata or generalized transition graph. Flowgraphs are used to represent semi-Markov reliability models. They are directed graphs with edges labeled with expressions of the form pG(s), where p is the probability of transition from node i to node j, say; and G(s) is the transform (Laplace transform, moment generating function, or characteristic function) of the waiting time in i given that the next transition is to j. Usually, transforms of waiting time distributions (e.g. time to first failure) are obtained from these graph representations by applying Mason's Rule (e.g. Huzurbazar, Mason, and Osaki), or, by the Cofactor Rule. In this paper we are concerned with obtaining transforms of waiting times by direct manipulation of the flowgraphs along the lines in finite automata. The goal of the paper is to observe that identical patterns of reasoning are applicable in both fields. This interconnects two apparently unrelated fields of knowledge, an interesting observation for its own sake but also important from a tool & technique point of view. | 
    
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| AbstractList | We discuss the interrelationship of two seemingly unrelated subjects: the theory of finite automata, and reliability theory, finite automata, more generally known as generalized transition graphs, are dasiaconvertedpsila to regular expressions by manipulating their pictorial representation, a directed graph, by elimination of its states one-by-one until two states are left, connected by an edge whose label is a regular expression equivalent to the initially given finite automata or generalized transition graph. Flowgraphs are used to represent semi-Markov reliability models. They are directed graphs with edges labeled with expressions of the form pG(s), where p is the probability of transition from node i to node j, say; and G(s) is the transform (Laplace transform, moment generating function, or characteristic function) of the waiting time in i given that the next transition is to j. Usually, transforms of waiting time distributions (e.g. time to first failure) are obtained from these graph representations by applying Mason's Rule (e.g. Huzurbazar, Mason, and Osaki), or, by the Cofactor Rule. In this paper we are concerned with obtaining transforms of waiting times by direct manipulation of the flowgraphs along the lines in finite automata. The goal of the paper is to observe that identical patterns of reasoning are applicable in both fields. This interconnects two apparently unrelated fields of knowledge, an interesting observation for its own sake but also important from a tool & technique point of view. In this paper we are concerned with obtaining transforms of waiting times by direct manipulation of the flowgraphs along the lines in finite automata.  | 
    
| Author | Csenki, A. | 
    
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| Cites_doi | 10.1081/STA-120028678 10.1142/0164 10.1214/ss/1009212818 10.1007/978-94-011-2562-8_6 10.1109/JRPROC.1953.274449 10.1201/9780203493212.ch31 10.1016/j.peva.2006.08.002  | 
    
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| References | ref8 patel (ref11) 1976 ref9 osaki (ref10) 1985 ref3 sipser (ref12) 1997 ref6 ref5 ref1 huzurbazar (ref7) 2005 cohen (ref2) 1997 hoggar (ref4) 1992  | 
    
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| Snippet | We discuss the interrelationship of two seemingly unrelated subjects: the theory of finite automata, and reliability theory, finite automata, more generally... In this paper we are concerned with obtaining transforms of waiting times by direct manipulation of the flowgraphs along the lines in finite automata.  | 
    
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| SubjectTerms | Automata Automation Bypass and state elimination algorithm Character generation Computer science Control engineering Equivalence Feedback loop finite automata flowgraphs Graph representations Graph theory Graphs Informatics Kleene's theorem Laplace equations Laplace transforms Mathematical analysis Mathematical models Random variables regular expressions Reliability theory Representations semi-Markov models Studies Terminology Transforms  | 
    
| Title | Flowgraph Models in Reliability and Finite Automata | 
    
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