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Papers/A Novel Bi-directional Interrelated Model for Joint Intent...

A Novel Bi-directional Interrelated Model for Joint Intent Detection and Slot Filling

Haihong E, Peiqing Niu, Zhongfu Chen, Meina Song

2019-06-30ACL 2019 7Intent Detectionslot-fillingSlot FillingSpoken Language Understanding
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Abstract

A spoken language understanding (SLU) system includes two main tasks, slot filling (SF) and intent detection (ID). The joint model for the two tasks is becoming a tendency in SLU. But the bi-directional interrelated connections between the intent and slots are not established in the existing joint models. In this paper, we propose a novel bi-directional interrelated model for joint intent detection and slot filling. We introduce an SF-ID network to establish direct connections for the two tasks to help them promote each other mutually. Besides, we design an entirely new iteration mechanism inside the SF-ID network to enhance the bi-directional interrelated connections. The experimental results show that the relative improvement in the sentence-level semantic frame accuracy of our model is 3.79% and 5.42% on ATIS and Snips datasets, respectively, compared to the state-of-the-art model.

Results

TaskDatasetMetricValueModel
Slot FillingATISF10.958SF-ID
Slot FillingSNIPSF192.23SF-ID
Intent DetectionATISAccuracy97.76SF-ID
Intent DetectionATISAccuracy97.76SF-ID (BLSTM) network
Intent DetectionSNIPSAccuracy97.43SF-ID
Intent DetectionSNIPSAccuracy97.43SF-ID (BLSTM) network

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