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Improving Spoken Language Understanding by Wisdom of Crowds

机译:通过人群智慧提高口语理解

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Spoken language understanding (SLU), which converts user requests in natural language to machine-interpretable expressions, is becoming an essential task. The lack of training data is an important problem, especially for new system tasks, because existing SLU systems are based on statistical approaches. In this paper, we proposed to use two sources of the "wisdom of crowds," crowdsourcing and knowledge community website, for improving the SLU system. We firstly collected paraphrasing variations for new system tasks through crowdsourcing as seed data, and then augmented them using similar questions from a knowledge community website. We investigated the effects of the proposed data augmentation method in SLU task, even with small seed data. In particular, the proposed architecture augmented more than 120,000 samples to improve SLU accuracies.
机译:将用户请求以自然语言转换为机器可解释的表达式的口语理解(SLU)正在成为必不可少的任务。 缺乏培训数据是一个重要问题,特别是对于新系统任务,因为现有的SLU系统基于统计方法。 在本文中,我们建议使用“人群智慧”的两个来源,众包和知识社区网站,用于改善SLU系统。 我们首先通过作为种子数据众包收集新系统任务的措辞,然后使用知识社区网站的类似问题增强它们。 我们调查了所提出的数据增强方法在SLU任务中的影响,即使是小种子数据。 特别是,所提出的架构增强了120,000多个样本以提高综合精度。

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