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bfn
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Abiray/zembed-1-Q4_K_M-GGUF
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keisuke-miyako/zerank-2-gguf-q4_k_m
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🤗 Sentence Transformers v2.4.0 for embedding models is now out! It introduces a lot of powerful features, such as: 1. Matryoshka Loss function - you can now train & perform inference on 🪆 Matryoshka Embedding models. See also our blogpost: https://huggingface.co/blog/matryoshka 2. CoSENTLoss & AnglELoss: State of the art loss functions. These are quite interesting, they outperform CosineSimilarityLoss on nearly all benchmarks as a drop-in replacement! See also the docs: https://sbert.net/docs/package_reference/losses.html#cosentloss 3. Prompt templates: Many popular models such as https://huggingface.co/intfloat/multilingual-e5-large and https://huggingface.co/BAAI/bge-large-en-v1.5 prefix their texts with prompts, so this adds configuration options to automatically include prompts using `model.encode(..., prompt_name="query")` which will include a prompt with the name "query". More info in the docs: https://sbert.net/examples/applications/computing-embeddings/README.html#prompt-templates 4. Instructor support: Support for the INSTRUCTOR line of models, such as https://huggingface.co/hkunlp/instructor-large. Learn how to use them here: https://sbert.net/docs/pretrained_models.html#instructor-models 5. Removed NLTK & sentencepiece dependencies: Should allow for a smaller installation & a slightly faster import! 6. Updated documentation: a new Loss Overview section: https://sbert.net/docs/training/loss_overview.html and more detailed loss functions: https://sbert.net/docs/package_reference/losses.html And much more! See the full release notes here: https://github.com/UKPLab/sentence-transformers/releases/tag/v2.4.0 Some more very exciting updates are still on the horizon!
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Abiray/zembed-1-Q4_K_M-GGUF
Feature Extraction
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4B
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Mar 11
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197
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keisuke-miyako/zerank-2-gguf-q4_k_m
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Feb 19
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intfloat/multilingual-e5-large
Feature Extraction
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kev216/sentence-embedding-LaBSE
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Nov 13, 2023
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