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【复旦大学】New Algorithms for Eigenvalue Calculations

发布时间:2021年05月06日 14:57 浏览量:

报告题目:New Algorithms for Eigenvalue Calculations

报告时间:202159日(周日)10001100

报告地点:创新园大厦A1101

报告人:高卫国  (复旦大学)

校内联系人:董波, 电话:13591137353

报告摘要:In this talk I will present our collaborative work on new algorithms for solving two different types of eigenvalue problems. Firstly, a novel orthogonalization-free method together with two specific algorithms are proposed to solve extreme eigenvalue problems. These algorithms achieve eigenvectors instead of eigenspace. Global convergence and local linear convergence are discussed. Efficiency of new algorithms are demonstrated on random matrices and matrices from computational chemistry. Secondly, we explore the possibility of using a reinforcement learning (RL) algorithm to solve large-scale k-sparse eigenvalue problems. By describing how to represent states, actions, rewards and policies, an RL algorithm is designed and demonstrated the effectiveness on examples from quantum many-body physics.

报告人简介:复旦大学数学科学学院教授 、博士生导师,大数据学院副院长。计算物质科学教育部重点实验室、教育部创新团队《复杂物质体系的计算研究》、上海市数据科学重点实验室成员。《高等学校计算数学学报》《数值计算与计算机应用》编委。主要研究领域为数值线性代数和高性能计算,包括线性与非线性特征值问题、大规模科学与并行计算、电子结构计算与鞍点计算、数据科学中的数值分析问题等。文章发表在SINUMSISCSIMAXNumer MathJ Comp Phys等计算数学专业杂志和ACM TOMSIEEE TACInt J Numer Meth EngJACSJ Chem PhysComput Phys CommunComp Mater Sci等应用领域杂志上。

 

 

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