Capacity estimation of two-dimensional channels using Sequential Monte Carlo

Information Theory Workshop(2014)

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摘要
We derive a new Sequential-Monte-Carlo-based algorithm to estimate the capacity of two-dimensional channel models. The focus is on computing the noiseless capacity of the 2-D (1, ∞) run-length limited constrained channel, but the underlying idea is generally applicable. The proposed algorithm is profiled against a state-of-the-art method, yielding more than an order of magnitude improvement in estimation accuracy for a given computation time.
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关键词
Monte Carlo methods,channel capacity,sequential estimation,2D (1,∞) run-length limited constrained channel,noiseless capacity computation,sequential-Monte-Carlo-based algorithm,two-dimensional channels capacity estimation
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