Hierarchical power delivery network analysis using Markov chains

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This paper proposes a Markov chain based hierarchical method to efficiently analyze the power delivery network. After the network being partitioned into several subnetworks, each subnetwork is transformed into a local Markov chain. Then, the connective relations between all subnetworks are modeled as a global Markov chain. Finally, those local and the global Markov chains are incorporated to build a hierarchical bipartite Markov chain engine to analyze the power delivery network. The experimental results not only demonstrate the accuracy of proposed method compared with a very accurate time domain solver [1], but also show its significant runtime improvement, over 200 times faster than the InductWise [1] and over 10 times faster than the IEKS method [2], and less memory usage.

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