Gemma 3 R1984 27B Q6 K GGUF

27
10
27.0B
12 languages
llama-cpp
by
openfree
Image Model
OTHER
27B params
New
27 downloads
Early-stage
Edge AI:
Mobile
Laptop
Server
61GB+ RAM
Mobile
Laptop
Server
Quick Summary

openfree/Gemma-3-R1984-27B-Q6K-GGUF This model was converted to GGUF format from `VIDraft/Gemma-3-R1984-27B` using llama.

Device Compatibility

Mobile
4-6GB RAM
Laptop
16GB RAM
Server
GPU
Minimum Recommended
26GB+ RAM

Training Data Analysis

🟡 Average (4.3/10)

Researched training datasets used by Gemma 3 R1984 27B Q6 K GGUF with quality assessment

Specialized For

general
science
multilingual
reasoning

Training Datasets (3)

common crawl
🔴 2.5/10
general
science
Key Strengths
  • Scale and Accessibility: At 9.5+ petabytes, Common Crawl provides unprecedented scale for training d...
  • Diversity: The dataset captures billions of web pages across multiple domains and content types, ena...
  • Comprehensive Coverage: Despite limitations, Common Crawl attempts to represent the broader web acro...
Considerations
  • Biased Coverage: The crawling process prioritizes frequently linked domains, making content from dig...
  • Large-Scale Problematic Content: Contains significant amounts of hate speech, pornography, violent c...
wikipedia
🟡 5/10
science
multilingual
Key Strengths
  • High-Quality Content: Wikipedia articles are subject to community review, fact-checking, and citatio...
  • Multilingual Coverage: Available in 300+ languages, enabling training of models that understand and ...
  • Structured Knowledge: Articles follow consistent formatting with clear sections, allowing models to ...
Considerations
  • Language Inequality: Low-resource language editions have significantly lower quality, fewer articles...
  • Biased Coverage: Reflects biases in contributor demographics; topics related to Western culture and ...
arxiv
🟡 5.5/10
science
reasoning
Key Strengths
  • Scientific Authority: Peer-reviewed content from established repository
  • Domain-Specific: Specialized vocabulary and concepts
  • Mathematical Content: Includes complex equations and notation
Considerations
  • Specialized: Primarily technical and mathematical content
  • English-Heavy: Predominantly English-language papers

Explore our comprehensive training dataset analysis

View All Datasets

Code Examples

Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp
Use with llama.cppbashllama.cpp
brew install llama.cpp

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