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Llama 4 Scout 17B 16E Instruct Quantized.w4a16

Developed by RedHatAI
INT4 weight-quantized version based on Llama-4-Scout-17B-16E-Instruct, reducing VRAM requirements by 75%, supporting multilingual text-image generation tasks
Downloads 11.03k
Release Time : 4/25/2025

Model Overview

This is an optimized multilingual large language model supporting both text and image inputs with text outputs. The model has undergone INT4 quantization, significantly reducing resource demands.

Model Features

Efficient Quantization
Utilizes INT4 weight quantization technology, reducing VRAM requirements by approximately 75% and disk space needs by the same proportion
Multilingual Support
Supports text-image generation tasks in 12 languages, covering major Asian and European languages
Enterprise Deployment
Optimized for Red Hat Enterprise AI platforms including RHEL AI and Openshift AI

Model Capabilities

Text Generation
Multilingual Processing
Text-Image Understanding

Use Cases

Content Creation
Multilingual Content Generation
Automatically generates culturally appropriate content for users in different languages
Efficient production of high-quality content in 12 languages
Enterprise Applications
Enterprise Knowledge Q&A
Deployable internal knowledge Q&A system for enterprises
Rapid response to employee queries, improving work efficiency
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