Strong Diagnosability and Conditional Diagnosability of Augmented Cubes Under the Comparison Diagnosis Model
The problem of fault diagnosis has been discussed widely, and the diagnosability of many well-known networks has been explored. Strong diagnosability, and conditional diagnosability are both novel measurements for evaluating reliability and fault tolerance of a system. In this paper, some useful suf...
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Veröffentlicht in: | IEEE transactions on reliability 2012-03, Vol.61 (1), p.140-148 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The problem of fault diagnosis has been discussed widely, and the diagnosability of many well-known networks has been explored. Strong diagnosability, and conditional diagnosability are both novel measurements for evaluating reliability and fault tolerance of a system. In this paper, some useful sufficient conditions are proposed to determine strong diagnosability, and the conditional diagnosability of a system. We then apply them to show that an n-dimensional augmented cube AQ n is strongly (2n -1)-diagnosable for n ≥ 5, and the conditional diagnosability of AQ n is 6n - 17 for n ≥ 6. Our result demonstrates that the conditional diagnosability of AQ n is about three times larger than the classical diagnosability. |
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ISSN: | 0018-9529 1558-1721 |
DOI: | 10.1109/TR.2011.2170105 |