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Recent advances in deep learning for speech research at Microsoft

机译:微软语音研究深度学习的最新进展

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Deep learning is becoming a mainstream technology for speech recognition at industrial scale. In this paper, we provide an overview of the work by Microsoft speech researchers since 2009 in this area, focusing on more recent advances which shed light to the basic capabilities and limitations of the current deep learning technology. We organize this overview along the feature-domain and model-domain dimensions according to the conventional approach to analyzing speech systems. Selected experimental results, including speech recognition and related applications such as spoken dialogue and language modeling, are presented to demonstrate and analyze the strengths and weaknesses of the techniques described in the paper. Potential improvement of these techniques and future research directions are discussed.
机译:深度学习正在成为工业规模语音识别的主流技术。在本文中,我们提供了Microsoft语音研究人员自2009年以来在该领域的工作的概述,重点是最近的进展,这些进展为当前深度学习技术的基本功能和局限性提供了启示。我们根据分析语音系统的常规方法,沿特征域和模型域维度组织了此概述。介绍了选定的实验结果,包括语音识别和相关应用(如口语对话和语言建模),以演示和分析本文所述技术的优缺点。讨论了这些技术的潜在改进和未来的研究方向。

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