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NCTS / NTU / NCU / NTUST Joint Seminar on Compressive Sensing and Its Applications
 
16:30 - 17:30, December 25, 2015 (Friday)
R440, Astronomy-Mathematics Building, NTU
(台灣大學天文數學館 440室)
A general framework for a class of first order primal-dual algorithms for convex optimization in imaging science
Yi-Su Lo (National Central University)

In  this  talk,  we  introduced  an  efficient  prime-dual  hybrid  gradient  algorithm  for  total  variation minimization problems. This descent-type algorithm alternates between primal and dual variables and  could  be  connected  to  several  popular  existing  methods  such  as  CGM and Chambolle’s algorithms. As a numerical experiment, we also present a comparison of the performance of these algorithms  applied  to  a  benchmark denoising  problem  in  the  image processing  realm.
 
 
Reference
Esser,  Ernie,  Xiaoqun  Zhang,  and  Tony  F. Chan.  "A  general  framework  for  a  class  of  first  order primal-dual  algorithms  for  convex optimization  in imaging  science."  SIAM  Journal  on  Imaging Sciences 3.4 (2010): 1015-1046.


 

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