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Domain Adaptation: the Key Enabler of Neural Network Equalizers in Coherent Optical Systems

Published 25 Feb 2022 in eess.SP and cs.LG | (2202.12689v1)

Abstract: We introduce the domain adaptation and randomization approach for calibrating neural network-based equalizers for real transmissions, using synthetic data. The approach renders up to 99\% training process reduction, which we demonstrate in three experimental setups.

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