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◆ Computer Graphics Forum2026-06-11· Computer science

Multi2‐Vis: Guiding Interactive Exploration Across Temporal Scales in Dynamic Graphs

Jinghan Bai, Hao Geng, Huijie Zhang, Yiming Lin, Qiushi Xia

原始摘要(英文原文)· Original abstract
Abstract Selecting appropriate temporal intervals for analyzing dynamic graphs is a critical but non‐trivial task. Poorly chosen intervals can obscure key structural changes and lead to flawed interpretations, while existing tools often lack effective guidance, forcing users into a cycle of tedious manual adjustments and trial‐and‐error. We present Multi2‐Vis, a visual analytics system that reframes temporal segmentation as a human‐in‐the‐loop interactive refinement process. Multi2‐Vis employs an Evaluate‐Recommend‐Refine loop: it uses structure‐aware metrics to automatically identify suboptimal segments and then presents optimized alternatives in a multi‐scale visual interface, guiding users toward informed decisions. Through two case studies, a quantitative experiment and a controlled user study, we demonstrate that our guided workflow significantly improves analysts' analytical efficiency and conclusion quality compared to traditional methods. By transforming temporal segmentation from a rigid prerequisite into a flexible, interactive dialogue, Multi2‐Vis provides a more interpretable solution for dynamic graph analysis.
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