CHILab @ HaSpeeDe 2:利用词性标注增强仇恨言论检测(短文)

Giuseppe Gambino, R. Pirrone
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引用次数: 6

摘要

本文描述了两种用于仇恨语音检测任务的神经网络系统,它们不仅利用预处理文本,而且利用其词性(PoS)标签。第一个系统使用变压器编码器块,这是一种相对较新的神经网络架构,作为循环神经网络的替代品。第二个系统使用深度可分离卷积神经网络,这是一种新型的CNN,由于其计算效率而在图像处理领域广为人知。这些系统已用于参与EVALITA 2020研讨会的HaSpeeDe 2任务(以CHILab为团队名称),其中我们最好的系统(使用Transformer的系统)在四个任务中的两个中排名第一,在其他两个任务中排名第三。该系统还对英语、西班牙语和德语进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CHILab @ HaSpeeDe 2: Enhancing Hate Speech Detection with Part-of-Speech Tagging (short paper)
The present paper describes two neural network systems used for Hate Speech Detection tasks that make use not only of the pre-processed text but also of its Partof-Speech (PoS) tag. The first system uses a Transformer Encoder block, a relatively novel neural network architecture that arises as a substitute for recurrent neural networks. The second system uses a Depth-wise Separable Convolutional Neural Network, a new type of CNN that has become known in the field of image processing thanks to its computational efficiency. These systems have been used for the participation to the HaSpeeDe 2 task of the EVALITA 2020 workshop with CHILab as the team name, where our best system, the one that uses Transformer, ranked first in two out of four tasks and ranked third in the other two tasks. The systems have also been tested on English, Spanish and German languages.
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