Papers › X-ALMA: Plug & Play Modules and Adaptive Rejection for Quality Translation at Scale

X-ALMA: Plug & Play Modules and Adaptive Rejection for Quality Translation at Scale

4 Oct 2024arXiv:2410.03115archive 2025-07-28

Haoran Xu, Kenton Murray, Philipp Koehn, Hieu Hoang, Akiko Eriguchi, Huda Khayrallah

Large language models (LLMs) have achieved remarkable success across various NLP tasks, yet their focus has predominantly been on English due to English-centric pre-training and limited multilingual data. While some multilingual LLMs claim to support for hundreds of languages, models often fail to provide high-quality response for mid- and low-resource languages, leading to imbalanced performance heavily skewed in favor of high-resource languages like English and Chinese. In this paper, we prioritize quality over scaling number of languages, with a focus on multilingual machine translation task, and introduce X-ALMA, a model designed with a commitment to ensuring top-tier performance across 50 diverse languages, regardless of their resource levels. X-ALMA surpasses state-of-the-art open-source multilingual LLMs, such as Aya-101 and Aya-23, in every single translation direction on the FLORES and WMT'23 test datasets according to COMET-22. This is achieved by plug-and-play language-specific module architecture to prevent language conflicts during training and a carefully designed training regimen with novel optimization methods to maximize the translation performance. At the final stage of training regimen, our proposed Adaptive Rejection Preference Optimization (ARPO) surpasses existing preference optimization methods in translation tasks.

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LlamaMLP fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology ran MIT (permissive) · 22b14861d2a7046e · report
LlamaPreTrainedModel fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology ran MIT (permissive) · 92b63c7c724b0ad8 · report
LlamaRotaryEmbedding fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology ran fingerprinted MIT (permissive) · 18df0f479941cc0b · report
LlamaAttention fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 2f90acc30c03054d · report
LlamaDecoderLayer fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 189228f2bd4c1774 · report
LlamaFlashAttention2 fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 029efe060793a0cf · report
LlamaModel fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 6110e1e09650f061 · report
LlamaSdpaAttention fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 29dde771bf07eb36 · report
XALMAForCausalLM fe1ixxu/ALMA/modeling_xalma.py found in paper text by Syntology unverified MIT (permissive) · 0954d169fb129d21 · report

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