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Revise titles
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---
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title: "MUVERA Embeddings"
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title: "MUVERA: Making multivectors more performant"
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short_description: "Making multi-vector retrieval more efficient by approximating it with single-vector search"
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description: "Multi-vector representations are superior to single-vector embeddings in many benchmarks. MUVERA embeddings aim to solve the problem of slow multi-vector search by creating a single-vector representation that approximates the multi-vector representation. This single vector can be used for fast initial retrieval using traditional vector search methods, and then the multi-vector representation can be used for reranking the top results."
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preview_dir: /articles_data/muvera-embeddings/preview
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category: vector-search-manuals
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---
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## What are MUVERA Embeddings?
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Multi-vector representations are superior to single-vector embeddings in many benchmarks. It might be tempting to use
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them right away, but there is a catch: they are slower to search. Traditional vector search structures like
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[HNSW](/documentation/concepts/indexing/#vector-index) are optimized for retrieving the nearest neighbors of a single
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@@ -193,6 +195,8 @@ embeddings = np.array(list(model.embed(["sample text"])))
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fde = muvera.process_document(embeddings[0])
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```
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## Try it out today
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If you're already using multi-vector retrieval, upgrading to FastEmbed 0.7.2+ will unlock MUVERA's 7x speed improvements
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while maintaining nearly identical search quality. And if you've always wanted to experiment with multi-vector retrieval
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but were held back by performance concerns or complexity, now is the perfect time to start. MUVERA removes those
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