gemma-3-1b-it-qat-q4_0-gguf-MNN
199
1.0B
1 language
license:apache-2.0
by
taobao-mnn
Language Model
OTHER
1B params
New
199 downloads
Early-stage
Edge AI:
Mobile
Laptop
Server
3GB+ RAM
Mobile
Laptop
Server
Quick Summary
AI model with specialized capabilities.
Device Compatibility
Mobile
4-6GB RAM
Laptop
16GB RAM
Server
GPU
Minimum Recommended
1GB+ RAM
Training Data Analysis
🟡 Average (4.3/10)
Researched training datasets used by gemma-3-1b-it-qat-q4_0-gguf-MNN 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 DatasetsCode Examples
Downloadbash
# install huggingface
pip install huggingfaceDownloadbash
# install huggingface
pip install huggingfaceDownloadbash
# shell download
huggingface download --model 'taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNN' --local_dir 'path/to/dir'Downloadbash
# shell download
huggingface download --model 'taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNN' --local_dir 'path/to/dir'Downloadpython
# SDK download
from huggingface_hub import snapshot_download
model_dir = snapshot_download('taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNN')Downloadpython
# SDK download
from huggingface_hub import snapshot_download
model_dir = snapshot_download('taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNN')SDK downloadbash
# git clone
git clone https://www.modelscope.cn/taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNNSDK downloadbash
# git clone
git clone https://www.modelscope.cn/taobao-mnn/gemma-3-1b-it-qat-q4_0-gguf-MNNgit clonebash
# clone MNN source
git clone https://github.com/alibaba/MNN.git
# compile
cd MNN
mkdir build && cd build
cmake .. -DMNN_LOW_MEMORY=true -DMNN_CPU_WEIGHT_DEQUANT_GEMM=true -DMNN_BUILD_LLM=true -DMNN_SUPPORT_TRANSFORMER_FUSE=true
make -j
# run
./llm_demo /path/to/gemma-3-1b-it-qat-q4_0-gguf-MNN/config.json prompt.txtgit clonebash
# clone MNN source
git clone https://github.com/alibaba/MNN.git
# compile
cd MNN
mkdir build && cd build
cmake .. -DMNN_LOW_MEMORY=true -DMNN_CPU_WEIGHT_DEQUANT_GEMM=true -DMNN_BUILD_LLM=true -DMNN_SUPPORT_TRANSFORMER_FUSE=true
make -j
# run
./llm_demo /path/to/gemma-3-1b-it-qat-q4_0-gguf-MNN/config.json prompt.txtDeploy This Model
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