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DeDrift: Robust Similarity Search under Content Drift

1 Pith paper cite this work. Polarity classification is still indexing.

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abstract

The statistical distribution of content uploaded and searched on media sharing sites changes over time due to seasonal, sociological and technical factors. We investigate the impact of this "content drift" for large-scale similarity search tools, based on nearest neighbor search in embedding space. Unless a costly index reconstruction is performed frequently, content drift degrades the search accuracy and efficiency. The degradation is especially severe since, in general, both the query and database distributions change. We introduce and analyze real-world image and video datasets for which temporal information is available over a long time period. Based on the learnings, we devise DeDrift, a method that updates embedding quantizers to continuously adapt large-scale indexing structures on-the-fly. DeDrift almost eliminates the accuracy degradation due to the query and database content drift while being up to 100x faster than a full index reconstruction.

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cs.IR 1

years

2025 1

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representative citing papers

Quake: Adaptive Indexing for Vector Search

cs.IR · 2025-06-03 · conditional · novelty 6.0

Quake adaptively splits, merges, and scans partitions per query to keep vector search fast and accurate when data and access patterns change.

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  • Quake: Adaptive Indexing for Vector Search cs.IR · 2025-06-03 · conditional · none · ref 6 · internal anchor

    Quake adaptively splits, merges, and scans partitions per query to keep vector search fast and accurate when data and access patterns change.