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Semi-supervised Phoneme Recognition with Recurrent Ladder Networks

机译:半监控音素识别与经常性梯形网络

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Ladder networks are a notable new concept in the field of semi-supervised learning by showing state-of-the-art results in image recognition tasks while being compatible with many existing neural architectures. We present the recurrent ladder network, a novel modification of the ladder network, for semi-supervised learning of recurrent neural networks which we evaluate with a phoneme recognition task on the TIMIT corpus. Our results show that the model is able to consistently outperform the baseline and achieve fully-supervised baseline performance with only 75% of all labels which demonstrates that the model is capable of using unsupervised data as an effective regulariser.
机译:梯形图网络是半监督学习领域的显着新概念,通过显示最先进的图像识别任务,同时与许多现有的神经结构兼容。我们介绍了经常性梯形网络,梯形网络的新改进,用于经常性神经网络的半监督学习,我们在钟声识别任务上评估Timit Corpus。我们的研究结果表明,该模型能够始终如一地优于基线,实现全面监督的基线性能,只有75%的标签,表明该模型能够使用无监督数据作为有效的符号机构。

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