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The NTNU-YZU System in the AESW Shared Task: Automated Evaluation of Scientific Writing Using a Convolutional Neural Network

机译:NTNU-YZU系统在AESW共享任务中:使用卷积神经网络自动评估科学写作

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This study describes the design of the NTNU-YZU system for the automated evaluation of scientific writing shared task. We employ a convolutional neural network with the Word2Vec/GloVe embedding representation to predict whether a sentence needs language editing. For the Boolean prediction track, our best F-score of 0.6108 ranked second among the ten submissions. Our system also achieved an F-score of 0.7419 for the probabilistic estimation track, ranking fourth among the nine submissions.
机译:本研究描述了NTNU-YZU系统的设计,用于科学写作共享任务的自动评估。我们使用卷积神经网络与Word2Vec /手套嵌入表示,以预测句子是否需要语言编辑。对于布尔预测轨道,我们的最佳F分数为0.6108排名第二。我们的系统还达到了概率估计轨迹的0.7419的F分,在九所提交中排名第四。

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