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timorobrecht
/
babylm-qwen2-33m-bpe

Text Generation
Transformers
Safetensors
qwen2
causal-lm
trust-remote-code
sentencepiece
text-generation-inference
Model card Files Files and versions
xet
Community

Instructions to use timorobrecht/babylm-qwen2-33m-bpe with libraries, inference providers, notebooks, and local apps. Follow these links to get started.

  • Libraries
  • Transformers

    How to use timorobrecht/babylm-qwen2-33m-bpe with Transformers:

    # Use a pipeline as a high-level helper
    from transformers import pipeline
    
    pipe = pipeline("text-generation", model="timorobrecht/babylm-qwen2-33m-bpe")
    # Load model directly
    from transformers import AutoTokenizer, AutoModelForCausalLM
    
    tokenizer = AutoTokenizer.from_pretrained("timorobrecht/babylm-qwen2-33m-bpe")
    model = AutoModelForCausalLM.from_pretrained("timorobrecht/babylm-qwen2-33m-bpe", device_map="auto")
  • Notebooks
  • Google Colab
  • Kaggle
  • Local Apps Settings
  • vLLM

    How to use timorobrecht/babylm-qwen2-33m-bpe with vLLM:

    Install from pip and serve model
    # Install vLLM from pip:
    pip install vllm
    # Start the vLLM server:
    vllm serve "timorobrecht/babylm-qwen2-33m-bpe"
    # Call the server using curl (OpenAI-compatible API):
    curl -X POST "http://localhost:8000/v1/completions" \
    	-H "Content-Type: application/json" \
    	--data '{
    		"model": "timorobrecht/babylm-qwen2-33m-bpe",
    		"prompt": "Once upon a time,",
    		"max_tokens": 512,
    		"temperature": 0.5
    	}'
    Use Docker
    docker model run hf.co/timorobrecht/babylm-qwen2-33m-bpe
  • SGLang

    How to use timorobrecht/babylm-qwen2-33m-bpe with SGLang:

    Install from pip and serve model
    # Install SGLang from pip:
    pip install sglang
    # Start the SGLang server:
    python3 -m sglang.launch_server \
        --model-path "timorobrecht/babylm-qwen2-33m-bpe" \
        --host 0.0.0.0 \
        --port 30000
    # Call the server using curl (OpenAI-compatible API):
    curl -X POST "http://localhost:30000/v1/completions" \
    	-H "Content-Type: application/json" \
    	--data '{
    		"model": "timorobrecht/babylm-qwen2-33m-bpe",
    		"prompt": "Once upon a time,",
    		"max_tokens": 512,
    		"temperature": 0.5
    	}'
    Use Docker images
    docker run --gpus all \
        --shm-size 32g \
        -p 30000:30000 \
        -v ~/.cache/huggingface:/root/.cache/huggingface \
        --env "HF_TOKEN=<secret>" \
        --ipc=host \
        lmsysorg/sglang:latest \
        python3 -m sglang.launch_server \
            --model-path "timorobrecht/babylm-qwen2-33m-bpe" \
            --host 0.0.0.0 \
            --port 30000
    # Call the server using curl (OpenAI-compatible API):
    curl -X POST "http://localhost:30000/v1/completions" \
    	-H "Content-Type: application/json" \
    	--data '{
    		"model": "timorobrecht/babylm-qwen2-33m-bpe",
    		"prompt": "Once upon a time,",
    		"max_tokens": 512,
    		"temperature": 0.5
    	}'
  • Docker Model Runner

    How to use timorobrecht/babylm-qwen2-33m-bpe with Docker Model Runner:

    docker model run hf.co/timorobrecht/babylm-qwen2-33m-bpe
babylm-qwen2-33m-bpe
127 MB
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  • 1 contributor
History: 2 commits
timorobrecht's picture
timorobrecht
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  • hf
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  • preprocessing
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  • .gitattributes
    1.52 kB
    initial commit 6 days ago
  • README.md
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  • babylm-pinyin-code-bpe-16k.vocab
    258 kB
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  • config.json
    887 Bytes
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  • configuration_pinyin_code.py
    3.03 kB
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  • generation_config.json
    102 Bytes
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  • model.safetensors
    126 MB
    xet
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  • modeling_pinyin_code.py
    14.9 kB
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  • special_tokens_map.json
    96 Bytes
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  • tokenization_hybrid_pinyin_code.py
    31.9 kB
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  • tokenization_pinyin_code.py
    28.6 kB
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  • tokenizer.json
    716 kB
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  • tokenizer.model
    285 kB
    xet
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  • tokenizer_config.json
    1.28 kB
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  • training_metadata.json
    350 Bytes
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