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Amobee at SemEval-2018 Task 1: GRU Neural Network with a CNN Attention Mechanism for Sentiment Classification

机译:Amobee在Semeval-2018任务1:Gru神经网络具有CNN注意力机制的情绪分类

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This paper describes the participation of Amobee in the shared sentiment analysis task at SemEval 2018. We participated in all the English sub-tasks and the Spanish valence tasks. Our system consists of three parts: training task-specific word embeddings. training a model consisting of gated-recurrent-units (GRU) with a convolution neural network (CNN) attention mechanism and training stacking-based ensembles for each of the sub-tasks. Our algorithm reached 3rd and 1st places in the valence ordinal classification sub-tasks in English and Spanish, respectively.
机译:本文介绍了Amobee在2018年Semeval的共享情绪分析任务中的参与。我们参加了所有英语子任务和西班牙语价任务。我们的系统由三个部分组成:培训特定于任务的单词嵌入。培训由卷积神经网络(CNN)注意机制(CNN)注意机制和培训基于子任务的堆叠的集成的模型。我们的算法分别达到了英语和西班牙语的价序数分类子任务中的第3和第1位。

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