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Automatic Integrated Scoring Model for English Composition Oriented to Part-Of-Speech Tagging

机译:以言语分组的英语组成自动综合评分模型

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摘要

Part-of-speech tagging for English composition is the basis for automatic correction of English composition. The performance of the part-of-speech tagging system directly affects the performance of the marking and analysis of the correction system. Therefore, this paper proposes an automatic scoring model for English composition based on article part-of-speech tagging. First, use the convolutional neural network to extract the word information from the character level and use this part of the information in the coarse-grained learning layer. Secondly, the word-level vector is introduced, and the residual network is used to establish an information path to integrate the coarse-grained annotation and word vector information. Then, the model relies on the recurrent neural network to extract the overall information of the sequence data to obtain accurate annotation results. Then, the features of the text content are extracted, and the automatic scoring model of English composition is constructed by means of model fusion. Finally, this paper uses the English composition scoring competition data set on the international data mining competition platform Kaggle to verify the effect of the model.
机译:英语组成的词性标记是英语构图自动校正的基础。语音部分标记系统的性能直接影响校正系统的标记和分析的性能。因此,本文提出了一种基于文章部分语音标记的英语组成的自动评分模型。首先,使用卷积神经网络从字符级别提取单词信息,并在粗粒粒度学习层中使用该部分的信息。其次,介绍了单词级向量,并且剩余网络用于建立信息路径以集成粗粒粒度注释和字矢量信息。然后,该模型依赖于经常性神经网络来提取序列数据的整体信息以获得准确的注释结果。然后,提取文本内容的特征,通过模型融合构建了英语组成的自动评分模型。最后,本文使用英语构成评分竞争数据在国际数据挖掘竞争平台演出中设置了验证模型的效果。

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