가입 후 초대 링크를 공유하면 동영상 재생 및 초대 보상을 받을 수 있습니다.

Elastic
@elastic
가입 October 2009
0 팔로잉 중    0 팬
The hard parts of hybrid retrieval, already done. Elasticsearch Vector Database is a new serverless offering where expert-level tuning is the default: - bfloat16 storage: half the disk footprint before quantization even starts - BBQ: up to 32x vector compression, 95% less memory - Auto-calibration re-tunes quantization on every merge as your data drifts - Filtered vector search at up to 8x higher throughput than OpenSearch - Jina AI embeddings and reranking on managed GPU inference, or bring your own models You bring documents and queries. We handle the embeddings, tuning, and infrastructure. Full breakdown, including the semantic_text quickstart and what ships in vectorDB index mode:
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