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chungimungi
/
GLInt

Sentence Similarity
sentence-transformers
Safetensors
English
modernbert
colbert
late-interaction
retrieval
pylate
multi-vector
text-embeddings-inference
Model card Files Files and versions
xet
Community
1

Instructions to use chungimungi/GLInt with libraries, inference providers, notebooks, and local apps. Follow these links to get started.

  • Libraries
  • sentence-transformers

    How to use chungimungi/GLInt with sentence-transformers:

    from sentence_transformers import MultiVectorEncoder
    
    model = MultiVectorEncoder("chungimungi/GLInt")
    
    queries = ["Which planet is known as the Red Planet?"]
    documents = [
    	"Venus is often called Earth's twin because of its similar size and proximity.",
    	"Mars, known for its reddish appearance, is often referred to as the Red Planet.",
    	"Jupiter, the largest planet in our solar system, has a prominent red spot.",
    ]
    
    query_embeddings = model.encode_query(queries)
    document_embeddings = model.encode_document(documents)
    
    similarities = model.similarity(query_embeddings, document_embeddings)
    print(similarities)
  • Notebooks
  • Google Colab
  • Kaggle
GLInt / 1_Dense
9.44 MB
Ctrl+K
Ctrl+K
  • 2 contributors
History: 2 commits
chungimungi's picture
chungimungi
Fix serialization so the model loads with public PyLate 1.6.0 (metadata only; weights unchanged)
6aeb417 verified 2 months ago
  • config.json
    160 Bytes
    Fix serialization so the model loads with public PyLate 1.6.0 (metadata only; weights unchanged) 2 months ago
  • model.safetensors
    9.44 MB
    xet
    Upload GLINT-base checkpoint 2 months ago