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New York University(纽约大学)

2026-06-18 至 2026-06-18 共收录 2
2606.18424 2026-06-18 stat.OT cs.AI cs.IT math.IT 新提交

A Variational Framework for LLM Generator-Regulator Games

大语言模型生成器-调节器博弈的变分框架

Quanyan Zhu

机构 * Department of Electrical and Computer Engineering, Tandon School of Engineering, New York University, Brooklyn, NY, USA(电气工程系,工程学院,纽约大学,布鲁克林,纽约,美国)

AI总结 提出一个变分框架,将语言生成建模为熵正则化吉布斯分布,将调节建模为最优判别器,通过鞍点问题平衡效用、熵、调节一致性和有限长度可检测性,并通过审查过滤和钓鱼防御案例验证。

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2606.19329 2026-06-18 astro-ph.IM cs.LG 新提交

The Chandra-Gaia Catalog of Counterparts: Resolving ambiguous Gaia matches to X-ray sources in the Chandra Source Catalog using Machine Learning

钱德拉-盖亚对应体星表:利用机器学习解决钱德拉源星表中X射线源与盖亚源的多重匹配歧义

V. Samuel Pérez-Díaz, Vinay L. Kashyap, Joshua D. Ingram, David Fouhey, Juan Rafael Martínez-Galarza, Pavlos Protopapas, Jeremy J. Drake, Dong-Woo Kim, Cecilia Garraffo

机构 * Center for Astrophysics Harvard \& Smithsonian, 60 Garden St, Cambridge MA 02138, USA Harvard John A. Paulson School of Engineering Universidad del Rosario, School of Engineering, Science The NSF AI Institute for Artificial Intelligence New York University, Courant Institute, 60 5th Avenue, New York NY, USA Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, PA 15213 New College of Florida, 5800 Bayshore Road, Sarasota, FL 34243, USA Astrophysics Laboratory, 3251 Hanover St, Palo Alto, CA 94304, USA

AI总结 提出结合源属性(星等、颜色、距离)的机器学习框架,解决钱德拉源星表与盖亚源星表的交叉匹配歧义,为约11.3万个X射线源找到对应体,并识别约2万个假匹配。

Comments Accepted to The Astrophysical Journal. Website: https://www.samuelperezdi.com/chandragaia/

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