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On the compression of recurrent neural networks with an application to LVCSR acoustic modeling for embedded speech recognition

On the compression of recurrent neural networks with an application to LVCSR acoustic modeling for embedded speech recognition

We study the problem of compressing recurrent neural networks (RNNs). In particular, we focus on the compression of RNN acoustic models, which are motivated by the goal of building compact and accurate speech recognition systems which can be run efficiently on mobile devices. In this work, we present a technique …