An Upper Bound on the Performance of a Novel Feedforward Perceptron Equalizer

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Pulford, Graham W.
Kennedy, Rodney A.
Anderson, Brian D.O.

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The emulation of a nonadaptive, binary decision feedback equalizer, operating on a noiseless, finite impulse response channel by a feedforward multilayer processor is considered. This feedforward perceptron equalizer comprises a triangular array of hard-limiting processing elements. The functional similarity between the two systems is exploited to obtain a tight upper bound on the probability of error as a function of the number of layers, using the theory of finite state Markov processes.

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IEEE Transactions on Information Theory

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