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Dynamic Grammars with Lookahead Composition for WFST-based Speech Recognition

机译:基于WFST的语音识别的Pookahead组成的动态语法

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Automatic Speech Recognition (ASR) applications often employ a mixture of static and dynamic grammar components, and can thus benefit from the ability to efficiently modify the system vocabulary and other parameters in an on-line mode. This paper presents a novel, generic approach to dynamic grammar handling in the context of the Weighted Finite-State Transducer (WFST) paradigm. The method relies on a straightforward extension of the lexicon and underlying grammar components, and leverages the ideas of on-the-fly composition and delayed construction to efficiently generate the recognition search space on-the-fly. The alternative partitioning of component models,that this approach implies can also result in significant storage savings. In contrast to previous works in this area, the proposed method relies only on generic WFST operátions and the context-dependency, lexicon and grammar components that form the basis of standard ASR cascades.
机译:自动语音识别(ASR)应用程序通常采用静态和动态语法组件的混合,从而可以受益于在线模式下有效地修改系统词汇和其他参数。本文提出了一种新颖的通用方法来动态语法处理在加权有限状态换能器(WFST)范式的上下文中处理。该方法依赖于词典和底层语法组件的直接扩展,并利用了在飞行上的延迟构图和延迟结构的思想,以便在飞行中有效地产生识别搜索空间。组件模型的替代分区,即这种方法意味着还可以产生显着的存储节省。与此领域的先前作品相比,所提出的方法仅依赖于通用WFST Operions以及构成标准ASR级联基础的基础上的上下文依赖性,词典和语法组件。

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