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Databricks
@databricks
Databricks is the Data and AI company, helping organizations build and scale data and AI apps, analytics and agents.
加入 July 2013
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Classifying text against taxonomies with 100,000+ labels creates a hard tradeoff between accuracy, cost, and maintainability. We tested three approaches across vendor normalization, company deduplication, and biomedical entity linking: • Vector search • Vector search followed by AI Classify • Direct frontier model calls with prompt caching The AI Classify workflow delivered five points higher average accuracy than the next-best direct frontier model at roughly one-hundredth of the per-document cost. The pattern is simple: retrieve the most relevant labels first, then classify. Explore the benchmark and workflow:
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