Gemma - a family of lightweight, state-of-the art open models from Google | Google for Developers

Introducing Gemma, a family of open-source, lightweight language models. Discover quickstart guides, benchmarks, train and deploy on Google Cloud, and join the community to advance AI research.

Gemma - a family of lightweight, state-of-the art open models from Google  |  Google for Developers

紹介

What is Gemma?

Gemma is a family of lightweight, state-of-the-art open models built from the same research and technology used to create the Gemini models.

How can I use Gemma?

You can use Gemma for a variety of natural language processing tasks. Gemma models achieve exceptional benchmark results at their 2B and 7B sizes, even outperforming some larger open models. With Keras 3.0, you can enjoy seamless compatibility with JAX, TensorFlow, and PyTorch, empowering you to effortlessly choose and switch frameworks depending on your task.

Features of Gemma

Responsible by design

Gemma models incorporate comprehensive safety measures, ensuring responsible and trustworthy AI solutions through curated datasets and rigorous tuning.

Unmatched performance at size

Gemma models achieve exceptional benchmark results at their 2B and 7B sizes, even outperforming some larger open models.

Framework flexible

With Keras 3.0, you can enjoy seamless compatibility with JAX, TensorFlow, and PyTorch, empowering you to effortlessly choose and switch frameworks depending on your task.

Variants of Gemma

Gemma

Gemma models are lightweight, text-to-text, decoder-only large language models, trained on a massive dataset of text, code, and mathematical content for a variety of natural language processing tasks.

CodeGemma

CodeGemma brings powerful code completion and generation capabilities in sizes fit for your local computer.

PaliGemma

PaliGemma is an open vision-language model that is designed for class-leading fine-tune performance on a wide range of vision-language tasks.

RecurrentGemma

RecurrentGemma is a technically distinct model that leverages recurrent neural networks and local attention to improve memory efficiency.

Quick-start guides for developers

You can find quick-start guides on Kaggle, Google Cloud, and Colab.

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