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Gemma 3 4b It Qat Q4 0 Unquantized

Developed by google
Gemma 3 is a lightweight open-source multimodal model introduced by Google, built on the same technology as Gemini, supporting text and image inputs to generate text outputs.
Downloads 1,159
Release Time : 4/8/2025

Model Overview

Gemma 3 is a multimodal model capable of processing both text and image inputs to generate text outputs. It features a large 128K context window, supports over 140 languages, and is suitable for various tasks such as Q&A, summarization, and reasoning.

Model Features

Multimodal capability
Supports text and image inputs, capable of understanding and analyzing image content to generate relevant text outputs.
Large context window
Features a 128K large context window, enabling the processing of longer input sequences.
Multilingual support
Supports over 140 languages, making it suitable for multilingual tasks worldwide.
Lightweight design
Relatively small size allows deployment in resource-limited environments such as laptops, desktops, or cloud infrastructure.
Quantization-aware training
Uses Quantization-Aware Training (QAT), maintaining performance similar to bfloat16 while reducing memory requirements.

Model Capabilities

Text generation
Image analysis
Q&A
Summarization
Reasoning
Code generation
Mathematical problem-solving
Multilingual processing

Use Cases

Q&A systems
Open-domain Q&A
Answers various user questions with accurate information.
On the BoolQ benchmark, the 4B model achieved an accuracy of 72.3.
Document processing
Document summarization
Automatically generates concise summaries of long documents.
Image understanding
Image caption generation
Analyzes image content and generates descriptive text.
On the COCOcap benchmark, the 4B model scored 102.
Education
Mathematical problem-solving
Solves various mathematical problems and provides detailed steps.
On the GSM8K benchmark, the 4B model achieved an accuracy of 38.4.
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