45年梳理AI如何重塑翻译产业,揭示技术演进与核心挑战
Artificial intelligence contribution to translation industry: looking back and forward
- 基于13220篇文献的科学计量与主题分析,聚焦热点领域
- 神经网络与大语言模型推动翻译技术发展,但低资源语言仍存难题
- 适合关注AI翻译趋势、跨语言技术研究者参考
本研究对1980至2024年间人工智能(AI)在翻译产业中的贡献进行了全面分析(ACTI),共检索来自WoS、Scopus和Lens三个数据库的13220篇文献,其中9836篇为唯一记录。采用科学计量与主题分析双路径,前者涵盖聚类、学科类别、关键词、突现词、中心性及研究中心;后者精选18篇代表性文章,围绕目的、方法、发现及对未来方向的贡献展开主题评述。研究揭示,随着神经网络算法的融入与ChatGPT等大语言模型的推出,AI对翻译产业的推动日益显著。然而,针对低资源语言、多方言及自由语序语言,以及文化与宗教语域的翻译仍需更多严谨研究。
原文摘要 · Abstract (English)
This study provides a comprehensive analysis of artificial intelligence (AI) contribution to research in the translation industry (ACTI), synthesizing it over forty-five years from 1980-2024. 13220 articles were retrieved from three sources, namely WoS, Scopus, and Lens; 9836 were unique records, which were used for the analysis. We provided two types of analysis, viz., scientometric and thematic, focusing on Cluster, Subject categories, Keywords, Bursts, Centrality and Research Centers as for the former. For the latter, we provided a thematic review for 18 articles, selected purposefully from the articles involved, centering on purpose, approach, findings, and contribution to ACTI future directions. This study is significant for its valuable contribution to ACTI knowledge production over 45 years, emphasizing several trending issues and hotspots including Machine translation, Statistical machine translation, Low-resource language, Large language model, Arabic dialects, Translation quality, and Neural machine translation. The findings reveal that the more AI develops, the more it contributes to translation industry, as Neural Networking Algorithms have been incorporated and Deep Language Learning Models like ChatGPT have been launched. However, much rigorous research is still needed to overcome several problems encountering translation industry, specifically concerning low-resource, multi-dialectical and free word order languages, and cultural and religious registers.
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