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IIIDYT at IEST 2018: Implicit Emotion Classification With Deep Contextualized Word Representations

2018-08-27WS 2018Code Available0· sign in to hype

Jorge A. Balazs, Edison Marrese-Taylor, Yutaka Matsuo

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Abstract

In this paper we describe our system designed for the WASSA 2018 Implicit Emotion Shared Task (IEST), which obtained 2^nd place out of 26 teams with a test macro F1 score of 0.710. The system is composed of a single pre-trained ELMo layer for encoding words, a Bidirectional Long-Short Memory Network BiLSTM for enriching word representations with context, a max-pooling operation for creating sentence representations from said word vectors, and a Dense Layer for projecting the sentence representations into label space. Our official submission was obtained by ensembling 6 of these models initialized with different random seeds. The code for replicating this paper is available at https://github.com/jabalazs/implicit_emotion.

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