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Deep Multi-Task Learning for Aspect Term Extraction with Memory Interaction

2017-09-01 · EMNLP 2017 9 · Xin Li, Wai Lam

We propose a novel LSTM-based deep multi-task learning framework for aspect term extraction from user review sentences. Two LSTMs equipped with extended memories and neural memory operations are designed for jointly handling the extraction tasks of aspects and opinions via memory interactions. Sentimental sentence constraint is also added for more accurate prediction via another LSTM. Experiment results over two benchmark datasets demonstrate the effectiveness of our framework.

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Tasks

Aspect-Based Sentiment Analysis (ABSA)Multi-Task LearningSentenceSentiment AnalysisTerm Extraction

Methods 이 논문이 사용한 방법론

Sigmoid Activation 설명 없음
Tanh Activation 설명 없음
LSTM An LSTM is a type of recurrent neural network that addresses the vanishing gradient problem in vanilla…

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