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State of the art in statistical methods for language and speech processing

机译:语言和语音处理的统计方法的最新水平

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Recent years have seen rapid growth in the deployment of statistical methods for computational language and speech processing. The current popularity of such methods can be traced to the convergence of several factors, including the increasing amount of data now accessible, sustained advances in computing power and storage capabilities, and ongoing improvements in machine learning algorithms. The purpose of this contribution is to review the state of the art in both areas, point out the top trends in statistical modelling across a wide range of problems, and identify their most salient characteristics. The paper concludes with some prognostications regarding the likely impact on the field going forward.
机译:近年来,用于计算语言和语音处理的统计方法的部署迅速增长。此类方法的当前流行可以归结为几个因素的融合,包括现在可访问的数据量不断增加,计算能力和存储能力的持续提高以及机器学习算法的不断改进。该贡献的目的是回顾两个领域的最新技术水平,指出针对各种问题的统计建模的最新趋势,并确定其最突出的特征。本文以有关对该领域未来可能产生的影响的预后作为结论。

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