HIERARCHICAL MARKOVIAN MODELS - SYMMETRIES AND REDUCTION

被引:28
作者
BUCHHOLZ, P
机构
[1] Informatik IV, Universität Dortmund
关键词
HIERARCHICAL MODELS; MARKOV CHAINS; REDUCED CHAIN; STEADY STATE PROBABILITIES; SYMMETRIES; AGGREGATION; LUMPABILITY;
D O I
10.1016/0166-5316(93)E0040-C
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 [计算机科学与技术];
摘要
Hierarchical Markovian models are a useful paradigm for the specification and quantitative analysis of models arising from complex systems. Although techniques for a very efficient analysis of large scale hierarchical Markovian models have been developed recently, the size of the Markov chain underlying a complex hierarchical model often prohibits an analysis on contemporary computer equipment. However, many realistic models contain a lot of symmetric and identical parts, allowing the construction of a reduced Markov chain yielding exact results for the complete model. Or course, to make use of symmetries in a fairly complex model, a technique is needed that generates automatically a reduced Markov chain from the specification of the model. Such an approach can be integrated in an appropriate modelling tool environment for the analysis of hierarchical models and often yields a dramatic reduction in the state space size allowing the analysis of models that are far too large to be solved by standard means.
引用
收藏
页码:93 / 110
页数:18
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