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Efficient Temporal Subgraph Management: A New Interval Index

Dian Ouyang, Yikun Wang, Dong Wen, Wenjie Zhang, Yaping Liu, Xuemin Lin

2026Year

Abstract

Many research efforts have been conducted to mine various substructures in temporal graphs. Given a set of temporal subgraphs and an arbitrary time window, we aim to design an index structure to efficiently retrieve all subgraphs contained in (sub-valid) or containing (super-valid) the window. The problem falls in the category of fundamental interval range queries studying the relationship between a set of intervals and a query interval. We propose a novel data structure that is tailored for real-world temporal subgraphs with high volumes, great overlaps, and frequent updates. We design a lightweight linear size index structure with a linear index construction time. The index enables us to answer queries in near optimal time. We also propose algorithms to maintain the index. Our running time to insert a subgraph is bounded by the size of the changed values in the index, which is optimal in the context. Deleting a subgraph takes constant time. Experiments on real-world datasets with numerous subgraph instances demonstrate our significant advantages compared with existing baselines.

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