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发表时间:2020-06-10 阅读次数:520次
报告题目: Online seminar RICAM - Fudan
报 告 人:Shuai Lu / Andrea Aspri
报告人所在单位:Fudan University / RICAM
报告日期:2020-06-10 星期三
报告时间:20:00-21:30
报告地点:https://global.gotomeeting.com/join/244187445, Code:244-187-445
  
报告摘要:

SPEAKER: Shuai Lu (Fudan University)

TITLE: When randomness meets inverse problems

ABSTRACT: In this talk, we report some recent results on inverse problems associated with randomness. The first part focuses on the continuous asymptotical regularization on the statistical inverse problems in presence of white noise, where infinite-dimensional stochastic integration shall be treated carefully. The second part considers the convergence analysis on the random projection of discrete inverse problems and we briefly explain how to handle the randomness there. 

 

SPEAKER: Andrea Aspri (RICAM)

TITLE: Data driven regularization by projection

ABSTRACT: In this talk I will speak about some recent results on the study of linear inverse problems under the premise that the forward operator is not at hand but given indirectly through some input-output training pairs. We show that regularisation by projection and variational regularisation can be formulated by using the training data only and without making use of the forward operator. I will provide some information regarding convergence and stability of the regularised solutions. Moreover, we show, analytically and numerically, that regularisation by projection is indeed capable of learning linear operators, such as the Radon transform. This is a joint work with Yury Korolev (University of Cambridge) and Otmar Scherzer (University of Vienna and RICAM).

 

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本年度学院报告总序号:53

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