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      NTUA-SLP at SemEval-2018 Task 2: Predicting Emojis using RNNs with Context-aware Attention

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          Abstract

          In this paper we present a deep-learning model that competed at SemEval-2018 Task 2 "Multilingual Emoji Prediction". We participated in subtask A, in which we are called to predict the most likely associated emoji in English tweets. The proposed architecture relies on a Long Short-Term Memory network, augmented with an attention mechanism, that conditions the weight of each word, on a "context vector" which is taken as the aggregation of a tweet's meaning. Moreover, we initialize the embedding layer of our model, with word2vec word embeddings, pretrained on a dataset of 550 million English tweets. Finally, our model does not rely on hand-crafted features or lexicons and is trained end-to-end with back-propagation. We ranked 2nd out of 48 teams.

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          Most cited references4

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          DataStories at SemEval-2017 Task 4: Deep LSTM with Attention for Message-level and Topic-based Sentiment Analysis

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            How Cosmopolitan Are Emojis?

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              A Global Analysis of Emoji Usage

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                Author and article information

                Journal
                18 April 2018
                Article
                1804.06657
                8f06af7c-ee05-4dde-bc1d-94f175d27491

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                SemEval-2018, Task 2 "Multilingual Emoji Prediction"
                cs.CL

                Theoretical computer science
                Theoretical computer science

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