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ENTITY LEVEL DATA AUGMENTATION IN CHATBOTS FOR ROBUST NAMED ENTITY RECOGNITION

机译:实体级别数据在聊天标记名为实体识别中的Chatbots中增强

摘要

Techniques for data augmentation for training chatbot systems in natural language processing. In one particular aspect, a method is provided that includes generating a list of values to cover for an entity, selecting utterances from a set of data that have context for the entity, converting the utterances into templates, where each template of the templates comprises a slot that maps to the list of values for the entity, selecting a template from the templates, selecting a value from the list of values based on the mapping between the slot within the selected template and the list of values for the entity; and creating an artificial utterance based on the selected template and the selected value, where the creating the artificial utterance comprises inserting the selected value into the slot of the selected template that maps to the list of values for the entity.
机译:自然语言处理中训练Chatbot系统的数据增强技术。 在一个特定方面,提供了一种方法,该方法包括生成要覆盖实体的值列表,从具有实体的上下文的一组数据中选择发言,将话语转换为模板,其中模板的每个模板包括一个 插槽将映射到实体的值列表,从模板中选择模板,从所选模板中的插槽之间的映射和实体的值列表中选择值的值; 基于所选择的模板和所选择的值创建人工话语,其中创建人工话语包括将所选值插入到所选模板的槽中地映射到实体的值列表。

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