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4 months ago

Attention-Based Recurrent Neural Network Models for Joint Intent Detection and Slot Filling

Bing Liu; Ian Lane

Attention-Based Recurrent Neural Network Models for Joint Intent Detection and Slot Filling

Abstract

Attention-based encoder-decoder neural network models have recently shown promising results in machine translation and speech recognition. In this work, we propose an attention-based neural network model for joint intent detection and slot filling, both of which are critical steps for many speech understanding and dialog systems. Unlike in machine translation and speech recognition, alignment is explicit in slot filling. We explore different strategies in incorporating this alignment information to the encoder-decoder framework. Learning from the attention mechanism in encoder-decoder model, we further propose introducing attention to the alignment-based RNN models. Such attentions provide additional information to the intent classification and slot label prediction. Our independent task models achieve state-of-the-art intent detection error rate and slot filling F1 score on the benchmark ATIS task. Our joint training model further obtains 0.56% absolute (23.8% relative) error reduction on intent detection and 0.23% absolute gain on slot filling over the independent task models.

Code Repositories

DSKSD/RNN-for-Joint-NLU
pytorch
Mentioned in GitHub
Fireblossom/DeepDarkHomework
Mentioned in GitHub
Fireblossom/DeepDarkHomeword
Mentioned in GitHub
rparkin1/intent_LSTM
tf
Mentioned in GitHub
yinghao1019/Joint_learn
pytorch
Mentioned in GitHub
pengshuang/Joint-Slot-Filling
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
intent-detection-on-atisAttention Encoder-Decoder NN
Accuracy: 98.43
slot-filling-on-atisAttention Encoder-Decoder NN
F1: 0.9587

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