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What is EmbeddingGemma 2?

EmbeddingGemma 2 is a highly adaptable and lightweight multimodal embedding model that enables the integration of text, code, images, video, and audio into a single cohesive embedding space, serving a variety of functions such as search, retrieval, classification, routing, and RAG. Built on the Gemma 4 framework and licensed under Apache 2.0, it boasts an impressive 740 million parameters while being optimized for efficient operation on devices. The model's architecture is designed to allow for the use of only 270 million parameters when focusing on text-related tasks, and it is also equipped with additional encoders for vision and audio to provide a full range of multimodal functionalities. Moreover, the groundbreaking Matryoshka Representation Learning technique empowers developers to condense output vectors from 768 dimensions to smaller sizes of 512, 256, or even 128 dimensions, significantly minimizing the storage and memory requirements for local vector databases. Additionally, with an 8K-token context window, the model can seamlessly process up to 5.5 minutes of audio, 29 images, 58 video frames, or various combinations of these inputs on local hardware without a hitch. This level of versatility and efficiency makes it an invaluable asset for developers looking to enrich their applications with sophisticated multimedia capabilities. Ultimately, the potential applications of EmbeddingGemma 2 are vast, paving the way for innovative advancements in the field of multimodal technology.

What is DiffusionGemma?

DiffusionGemma is a groundbreaking open model that delves into the phenomenon of text diffusion, offering an exceptionally quick approach to text generation. Licensed under Apache 2.0, this model features a staggering 26 billion parameters and utilizes a Mixture of Experts (MoE) architecture, pushing the boundaries beyond the conventional sequential token generation found in autoregressive models. Rather than generating tokens one by one, it is capable of producing complete blocks of text simultaneously, yielding generation speeds that can be up to four times quicker on GPUs. With foundations rooted in the parameter efficiency of the Gemma 4 family and insights from Gemini Diffusion research, DiffusionGemma boasts a distinctive diffusion head that significantly accelerates the generation process. Its design targets researchers and developers focused on optimizing local workflows that demand speed, such as in-line editing, rapid iterations, and complex narrative structures. By shifting the decoding bottleneck from memory bandwidth to computational capacity, the model can generate over 1,000 tokens per second on a single NVIDIA H100 and more than 700 tokens per second when utilizing an NVIDIA GeForce RTX 5090. This advancement not only enhances efficiency in text generation but also opens up new possibilities for various applications in the realm of natural language processing, paving the way for innovative developments in the field. Ultimately, the capabilities of DiffusionGemma could lead to transformative changes in how we approach text generation tasks.

Media

Media

Integrations Supported

Integrations Supported

Gemini Enterprise Agent Platform
Gemma
NVIDIA NIM

API Availability

Has API

API Availability

Pricing Information

Pricing not provided

Pricing Information

Free
Free Version

Supported Platforms

SaaS

Supported Platforms

Windows
Mac
On-Prem
Linux

Customer Service / Support

Web-Based Support

Customer Service / Support

Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub

Company Facts

Organization Name

Google

Date Founded

1998

Company Location

United States

Company Website

blog.google/innovation-and-ai/technology/developers-tools/embeddinggemma-2/

Company Facts

Organization Name

Google

Date Founded

1998

Company Location

United States

Company Website

blog.google/innovation-and-ai/technology/developers-tools/diffusion-gemma-faster-text-generation/

Categories and Features

Embedding Models

Not specified

Categories and Features

AI Models

Not specified

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