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Utilizing relationships between named entities to improve speech recognition in dialog systems

机译:利用命名实体之间的关系来改进对话系统中的语音识别

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In this paper, we address the problem of improving recognition accuracy of spoken named entities in the context of dialog systems for transactional applications. We propose utilizing the knowledge of relationships, that typically exist in many applications, between named entities spoken across different dialog states. For example, in a bank customer database each customer name is associated with one or a few account numbers, addresses and vice versa. We utilize these relationships to build long-term dependency constraints in grammars (and thus in decoding graphs) representing these entities. This enforces the recognizer to use collective evidences from instances of all the entities to improve the recognition accuracy of each individual entity. Experiments conducted to evaluate our approach show significant accuracy improvements on a task of recognizing a person via a name and a location.
机译:在本文中,我们解决了在事务应用程序对话系统的语境中提高了命名实体的识别准确性的问题。我们建议利用关系的知识,这通常存在于许多应用程序之间,在不同对话框中发出的命名实体之间。例如,在银行客户数据库中,每个客户名称都与一个或几个帐号,地址和反之相关联。我们利用这些关系来构建语法中的长期依赖性约束(以及在代表这些实体的解码图中。这强制识别器从所有实体的实例中使用集体证据来提高每个单独实体的识别准确性。对我们的方法进行评估的实验表明,通过名称和位置识别一个人的任务,显着改善。

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