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English(EN) Measuring the Cost of Variety Conflation in Multilingual MT Evaluation: Adding Mozambican Xichangana, Nyanja and Sena to FLORES+

研究发现:多语言机器翻译评估因语言变体混淆而存在缺陷

研究人员发现,由于混淆语言变体,多语言机器翻译评估中存在显著差异。通过将莫桑比克Xichangana语、Nyanja语和Sena语的新评估集添加到FLORES+基准测试中,研究表明,使用与Xichangana语相近但不同的语言(如Tsonga语)代替Xichangana语,可能导致翻译质量得分下降超过15分。研究结果强调了需要进行面向变体的语言识别和报告,以准确评估机器翻译性能,特别是对于跨境语言和方言。 AI

影响 强调了AI模型评估中细致的语言数据的关键需求,影响了未来的基准设计和翻译质量评估。

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在 arXiv cs.CL 阅读 →

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研究发现:多语言机器翻译评估因语言变体混淆而存在缺陷

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报道来源 [1]

  1. arXiv cs.CL TIER_1 English(EN) · Felermino D. M. A. Ali, Delfina L\'azaro Mateus, Manuel Valente Mangue ·

    衡量多语言机器翻译评估中变体混淆的成本:为FLORES+添加莫桑比克Xichangana语、Nyanja语和Sena语

    arXiv:2609.13847v1 Announce Type: new Abstract: In this paper, we extend FLORES+ with Portuguese-source evaluation sets for three Mozambican Bantu varieties: Xichangana, Mozambican Nyanja, and Sena. We compare Xichangana with the existing Tsonga reference and Mozambican Nyanja wi…