리뷰 | Gemma – 구글의 오픈 LLM, Gemini 프로젝트의 주요 성과

Colab Notebook | GenAI 01: Gemma 모델의 튜닝 전후 성능 비교

#OpenLLMbyGoogle #Keras #LoRA / 240222 동준상.넥스트플랫폼 / ipynb

https://colab.research.google.com/drive/1pGBgSIf5EsbLLveStyaNIUIl8ea0KgcZ?usp=sharing

GenAI 01: Gemma 모델의 튜닝 전후 성능 비교

Prompt Engineering | Google Open Weights Gemma

Gemma: Open LLM by Google

https://blog.google/technology/developers/gemma-open-models/

Gemma는?

  • a family of lightweight, state-of-the-art open models
  • built from the same research and technology
  • used to create the Gemini models.
  • meaning: precious stone in Latin

Gemma의 주요 특징

  • Releasing model weights in two sizes: Gemma 2B and Gemma 7B. Each size is released with pre-trained and instruction-tuned variants.
  • A new Responsible Generative AI Toolkit provides guidance and essential tools for creating safer AI applications with Gemma.
  • Providing toolchains for inference and supervised fine-tuning (SFT) across all major frameworks: JAX, PyTorch, and TensorFlow through native Keras 3.0.
  • Ready-to-use Colab and Kaggle notebooks, alongside integration with popular tools such as Hugging Face, MaxText, NVIDIA NeMo and TensorRT-LLM, make it easy to get started with Gemma.
  • Pre-trained and instruction-tuned Gemma models can run on your laptop, workstation, or Google Cloud with easy deployment on Vertex AI and Google Kubernetes Engine (GKE).
  • Optimization across multiple AI hardware platforms ensures industry-leading performance, including NVIDIA GPUs and Google Cloud TPUs.
  • Terms of use permit responsible commercial usage and distribution for all organizations, regardless of size.

Gemma

https://ai.google.dev/gemma/?utm_source=keyword&utm_medium=referral&utm_campaign=gemma_cta&utm_content


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