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Gemma 3

Gemma 3

MinWoo(Daniel) Park | Tech Blog

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Gemma 3

  • Related Project: Private
  • Category: Paper Review
  • Date: 2025-03-13

Gemma 3 Technical Report

  • url: https://storage.googleapis.com/deepmind-media/gemma/Gemma3Report.pdf
  • abstract: We introduce Gemma 3, a multimodal addition to the Gemma family of lightweight open models, ranging in scale from 1 to 27 billion parameters. This version introduces vision understanding abilities, a wider coverage of languages and longer context – at least 128K tokens. We also change the architecture of the model to reduce the KV-cache memory that tends to explode with long context. This is achieved by increasing the ratio of local to global attention layers, and keeping the span on local attention short. The Gemma 3 models are trained with distillation and achieve superior performance to Gemma 2 for both pre-trained and instruction finetuned versions. In particular, our novel post-training recipe significantly improves the math, chat, instruction-following and multilingual abilities, making Gemma3-4B-IT competitive with Gemma2-27B-IT and Gemma3-27B-IT comparable to Gemini-1.5-Pro across benchmarks. We release all our models to the community.
  • official web: https://blog.google/technology/developers/gemma-3/

Gemma 3 주요 특징

  • 최고의 단일 가속기 모델: 크기 대비 뛰어난 성능으로 Llama-405B, DeepSeek-V3, o3-mini보다 우수한 인간 선호도 평가
  • 다국어 지원: 35개 언어 기본 지원, 140개 이상의 언어 사전 학습
  • 멀티모달 능력: 이미지, 텍스트, 짧은 비디오 분석 가능
  • 128K 토큰 컨텍스트 창: 방대한 정보 처리와 이해 가능
  • 함수 호출 및 구조화된 출력: 작업 자동화와 에이전트 경험 구축 지원
  • 공식 양자화 버전: 높은 정확도 유지하며 모델 크기와 계산 요구 감소
Previous: L1 Next: Communication-Efficient LM

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