首页> 外文会议>Annual conference of the International Speech Communication Association;INTERSPEECH 2011 >Learning Weighted Entity Lists from Web Click Logs for Spoken Language Understanding
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Learning Weighted Entity Lists from Web Click Logs for Spoken Language Understanding

机译:从Web点击日志中学习加权实体列表以了解口语

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Named entity lists provide important features for language un-derstanding, but typical lists can contain many ambiguous or incorrect phrases. We present an approach for automatically learning weighted entity lists by mining user clicks from web search logs. The approach significantly outperforms multiple baseline approaches and the weighted lists improve spoken language understanding tasks such as domain detection and slot filling. Our methods are general and can be easily applied to large quantities of entities, across any number of lists.
机译:命名实体列表为理解语言提供了重要的功能,但是典型的列表可能包含许多模棱两可或不正确的短语。我们提出了一种通过从Web搜索日志中挖掘用户点击来自动学习加权实体列表的方法。该方法明显优于多种基准方法,并且加权列表改善了口语理解任务,例如域检测和时隙填充。我们的方法是通用的,可以轻松地应用于任意数量列表中的大量实体。

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