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New Algorithms for Eigenvalue Calculations

活動信息

  • 開始時間:2021-05-09 10:00
  • 活動地點:創(chuàng)新園大廈A1101
  • 主講人:高衛(wèi)國

活動簡介

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.

主講人介紹

復旦大學數(shù)學科學學院教授 、博士生導師,大數(shù)據(jù)學院副院長。計算物質(zhì)科學教育部重點實驗室、教育部創(chuàng)新團隊《復雜物質(zhì)體系的計算研究》、上海市數(shù)據(jù)科學重點實驗室成員。《高等學校計算數(shù)學學報》《數(shù)值計算與計算機應用》編委。主要研究領域為數(shù)值線性代數(shù)和高性能計算,包括線性與非線性特征值問題、大規(guī)模科學與并行計算、電子結構計算與鞍點計算、數(shù)據(jù)科學中的數(shù)值分析問題等。文章發(fā)表在SINUM,SISC,SIMAX,Numer Math,J Comp Phys等計算數(shù)學專業(yè)雜志和ACM TOMS,IEEE TAC,Int J Numer Meth Eng,JACS,J Chem Phys,Comput Phys Commun,Comp Mater Sci等應用領域雜志上。
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