学术会议·讲座

讲座预告 | 暨南经院统计学系列Seminar第205期:潘文亮(中国科学院)

发布时间:2026-09-21浏览次数:11文章来源:讲座预告

主题:Ball Impurity: Measuring Heterogeneity in General Metric Spaces

主讲人:潘文亮 中国科学院

主持人:姜云卢 暨南大学

时间:2026年9月28日(周一)上午10:30-11:30

地点:暨南大学石牌校区经济学院(中惠楼)503室

摘要

Data in various domains, such as neuroimaging and network data analysis, often come in complex forms without possessing a Hilbert structure. The complexity necessitates innovative approaches for effective analysis. We propose a novel measure of heterogeneity, ball impurity, which is designed to work with complex non-Euclidean objects. Our approach extends the notion of impurity to general metric spaces, providing a versatile tool for feature selection and tree models. The ball impurity measure exhibits desirable properties, such as the triangular inequality, and is computationally tractable, enhancing its practicality and usefulness. Extensive experiments on synthetic data and real data from the UK Biobank validate the efficacy of our approach in capturing data heterogeneity. Remarkably, our results compare favorably with state-of-the-art methods in metric spaces, highlighting the potential of ball impurity as a valuable tool for addressing complex data analysis tasks.

主讲人简介

现任中国科学院数学与系统科学研究院研究员及博士生导师,专注于统计学习算法、医学图像数据分析和度量空间的非参数方法等领域研究。在Annals of Statistics、JASA和TPAMI等统计学和人工智能顶级杂志上发表了30篇以上学术论文,获得2022年教育部高等学校科学研究优秀成果自然科学类二等奖(排名第二)。主持的科研项目涵盖国家自然科学基金委青年基金B类、面上项目等。同时,担任北京生物医学统计与数据管理研究会副理事长,中国现场统计研究会监事以及中国现场统计研究会统计交叉科学研究分会副秘书长。


校对 |姜云卢

责编 | 彭毅

初审 | 姜云卢

终审发布 | 何凌云

 (来源:暨南大学经济学院微信公众号)


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