Affiliation:
1. Department de Lienguatges i Sistemes Informàtics, Universitat d'Alacant, E-03071 Alacant, Spain
Abstract
Recent work has shown that second-order recurrent neural networks (2ORNNs) may be used to infer regular languages. This paper presents a modified version of the real-time recurrent learning (RTRL) algorithm used to train 2ORNNs, that learns the initial state in addition to the weights. The results of this modification, which adds extra flexibility at a negligible cost in time complexity, suggest that it may be used to improve the learning of regular languages when the size of the network is small.
Subject
Cognitive Neuroscience,Arts and Humanities (miscellaneous)
Cited by
31 articles.
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