Title :
A unified framework for the performability evaluation of fault-tolerant computer systems
Author :
Pattipati, Krishna R. ; Li, Yong ; Blom, Henk A P
Author_Institution :
Dept. of Electr. & Syst. Eng., Univ. of Connecticut Storrs, CT, USA
fDate :
3/1/1993 12:00:00 AM
Abstract :
The problem of evaluating the performability density and distribution of degradable computer systems is considered. A generalized model of performability is considered, wherein the dynamics of configuration modes are modeled as a nonhomogeneous Markov process, and the performance rate in each configuration mode can be time dependent. The key to the development of a unifying mathematical framework is the introduction of two related performability processes: the forward performability process over the interval [0,t], and the performability-to-go process over the interval [t,T], where T is the mission time. Stochastic differential equations techniques show that the joint density of the forward performability and configuration states satisfies a linear, hyperbolic partial differential equation (PDE) with time-dependent coefficients that runs forward in time, while the performability-to-go process satisfies an adjoint PDE running reverse in time. A numerical method for solving the PDEs is presented and is illustrated with examples
Keywords :
Markov processes; fault tolerant computing; partial differential equations; performance evaluation; configuration modes; degradable computer systems; differential equations; fault-tolerant computer systems; forward performability process; hyperbolic partial differential equation; mathematical framework; mission time; nonhomogeneous Markov process; performability density; performability evaluation; performability-to-go; Degradation; Differential equations; Distributed computing; Fault tolerant systems; Forward contracts; Markov processes; Partial differential equations; Performance evaluation; Stochastic processes; Yttrium;
Journal_Title :
Computers, IEEE Transactions on