arXiv:2502.08489cs.CL2025-02被引 10

开源35语种大模型Salamandra,支持代码与对话应用。

Salamandra Technical Report

  • 从头训练3款多语言模型,数据全来自公开来源。
  • 在多语言评测中表现媲美同类开源模型。
  • 适合研究多语种、安全性和商业部署者使用。

本文介绍Salamandra,一套开源的解码器架构大语言模型,包含20亿、70亿和400亿参数三个版本。模型在涵盖35种欧洲语言及代码的多语言数据上从头训练,数据均来自开放获取资源,经精心筛选。除基础模型外,还发布了基于公开指令数据微调的聊天专用检查点。此外,我们展示了初步的多模态实验,验证了模型潜在应用场景。在多语言基准上的广泛评估表明,Salamandra性能具有竞争力,且在下游任务、偏见与安全性方面均有完整评测。本技术报告公开设计决策、数据策略与评估方法,并提供训练与评估脚本。所有模型以宽松的Apache 2.0许可证发布,旨在推动开放科学与生态发展。

原文摘要 · Abstract (English)

This work introduces Salamandra, a suite of open-source decoder-only large language models available in three different sizes: 2, 7, and 40 billion parameters. The models were trained from scratch on highly multilingual data that comprises text in 35 European languages and code. Our carefully curated corpus is made exclusively from open-access data compiled from a wide variety of sources. Along with the base models, supplementary checkpoints that were fine-tuned on public-domain instruction data are also released for chat applications. Additionally, we also share our preliminary experiments on multimodality, which serve as proof-of-concept to showcase potential applications for the Salamandra family. Our extensive evaluations on multilingual benchmarks reveal that Salamandra has strong capabilities, achieving competitive performance when compared to similarly sized open-source models. We provide comprehensive evaluation results both on standard downstream tasks as well as key aspects related to bias and safety.With this technical report, we intend to promote open science by sharing all the details behind our design choices, data curation strategy and evaluation methodology. In addition to that, we deviate from the usual practice by making our training and evaluation scripts publicly accessible. We release all models under a permissive Apache 2.0 license in order to foster future research and facilitate commercial use, thereby contributing to the open-source ecosystem of large language models.

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