首页> 外文期刊>International Journal of Artificial Intelligence Tools: Architectures, Languages, Algorithms >Spoken Language Understanding with a Novel Simultaneous Recognition Technique for Intelligent Personal Assistant Software
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Spoken Language Understanding with a Novel Simultaneous Recognition Technique for Intelligent Personal Assistant Software

机译:用智能个人助理软件的新型同步识别技术进行口语语言理解

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Intelligent personal assistant software, such as Apple's Siri and Samsung's S-Voice, is being widely used these days. One of the core modules of this kind of software is the spoken language understanding (SLU) module used to predict the user's intention for determining the system actions. The SLU module usually consists of several connected recognition components on a pipeline framework, whereas the proposed SLU module is developed by a novel technique that can simultaneously recognize four recognition components, namely named entity, speech-act, target, and operation using conditional random fields. In the experiments, the proposed simultaneous recognition technique achieved a relative improvement as high as approximately 2.2% and a faster speed of approximately 15% compared to a pipeline framework. A significance test showed that this improvement was statistically significant because the p-value was smaller than 0.01.
机译:智能个人助理软件,如Apple的Siri和三星的S-Doy,这些日子正在被广泛使用。 这种软件的核心模块之一是用于预测用户旨在确定系统操作的意图的口语理解(SLU)模块。 SLU模块通常由管道框架上的多个连接识别组件组成,而所提出的SLU模块是由一种新颖的技术开发的,该技术可以同时识别四个识别组件,即使用条件随机字段的命名实体,语音动作,目标和操作。 。 在实验中,与管道框架相比,所提出的同时识别技术的相对改善高达约2.2%,更快的速度约为15%。 显着性测试表明,这种改善是统计学上显着的,因为p值小于0.01。

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