arXiv:2412.16455cs.CLcs.CY2024-12

融合BERT与FastText提升暴力文本识别准确率

Research on Violent Text Detection System Based on BERT-fasttext Model

  • 结合BERT语义理解与FastText高效分类优势
  • 相比单用BERT和FastText分别提升0.7%和0.8%准确率
  • 适合需要高精度、快速响应的网络内容安全场景

在数字化时代,互联网已成为人们生活、工作与信息交流的重要平台,但网络暴力文本泛滥问题日益严重,带来诸多负面影响。构建有效的暴力文本拦截系统具有重要意义。本研究基于BERT-fasttext模型开展暴力文本检测,利用BERT强大的自然语言理解能力深入挖掘文本语义,结合FastText高效、低复杂度的文本分类特性,实现快速判断。该联合模型在暴力文本识别中兼具准确性与效率,相较单一BERT模型和FastText模型,准确率分别提升0.7%和0.8%。该方法有助于净化网络环境,保障信息健康传播,为网民营造积极、文明、和谐的在线交流空间,推动社交网络与信息传播向更良性方向发展。

原文摘要 · Abstract (English)

In the digital age of today, the internet has become an indispensable platform for people's lives, work, and information exchange. However, the problem of violent text proliferation in the network environment has arisen, which has brought about many negative effects. In view of this situation, it is particularly important to build an effective system for cutting off violent text. The study of violent text cutting off based on the BERT-fasttext model has significant meaning. BERT is a pre-trained language model with strong natural language understanding ability, which can deeply mine and analyze text semantic information; Fasttext itself is an efficient text classification tool with low complexity and good effect, which can quickly provide basic judgments for text processing. By combining the two and applying them to the system for cutting off violent text, on the one hand, it can accurately identify violent text, and on the other hand, it can efficiently and reasonably cut off the content, preventing harmful information from spreading freely on the network. Compared with the single BERT model and fasttext, the accuracy was improved by 0.7% and 0.8%, respectively. Through this model, it is helpful to purify the network environment, maintain the health of network information, and create a positive, civilized, and harmonious online communication space for netizens, driving the development of social networking, information dissemination, and other aspects in a more benign direction.

文本检测BERTFastText网络安全

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