arXiv:2509.20762cs.SIcs.LG2025-09被引 1

在标签稀缺下高效识别真实群体中的核心成员

Identifying Group Anchors in Real-World Group Interactions Under Label Scarcity

  • 提出半监督方法AnchorRadar,利用有无标签群体信息
  • 在13个数据集上准确率优于所有基线,训练时间快10.2倍
  • 适合群体行为分析、社交网络研究等场景

群体互动广泛存在于合著、邮件通信和在线问答等场景中,通常存在一个关键成员作为群体核心。本文定义此类成员为群组锚点(group anchors),并提出在标签稀缺条件下识别它们的问题。基于对真实群体互动的观察,我们设计了AnchorRadar,一种高效的半监督方法,可同时利用有标签和无标签群体的信息。在13个真实数据集上的实验表明,AnchorRadar在多数情况下准确率高于所有基线,平均训练时间仅为最快基线的10.2倍,参数量仅为最轻量基线的43.6倍。

原文摘要 · Abstract (English)

Group interactions occur in various real-world contexts, e.g., co-authorship, email communication, and online Q&A. In each group, there is often a particularly significant member, around whom the group is formed. Examples include the first or last author of a paper, the sender of an email, and the questioner in a Q&A session. In this work, we discuss the existence of such individuals in real-world group interactions. We call such individuals group anchors and study the problem of identifying them. First, we introduce the concept of group anchors and the identification problem. Then, we discuss our observations on group anchors in real-world group interactions. Based on our observations, we develop AnchorRadar, a fast and effective method for group anchor identification under realistic settings with label scarcity, i.e., when only a few groups have known anchors. AnchorRadar is a semi-supervised method using information from groups both with and without known group anchors. Finally, through extensive experiments on thirteen real-world datasets, we demonstrate the empirical superiority of AnchorRadar over various baselines w.r.t. accuracy and efficiency. In most cases, AnchorRadar achieves higher accuracy in group anchor identification than all the baselines, while using 10.2$\times$ less training time than the fastest baseline and 43.6$\times$ fewer learnable parameters than the most lightweight baseline on average.

群体分析半监督学习锚点识别

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