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On a Fixed-Point Continuation Method for a Convex Optimization Problem

  • Jean-Baptiste Fest,
  • Tommi Heikkilä,
  • Ignace Loris,
  • Ségolène Martin,
  • Luca Ratti,
  • Simone Rebegoldi,
  • Gesa Sarnighausen

摘要

We consider a variation of the classical proximal-gradient algorithm for the iterative minimization of a cost function consisting of a sum of two terms, one smooth and the other prox-simple, and whose relative weight is determined by a penalty parameter. This so-called fixed-point continuation method allows one to approximate the problem’s trade-off curve, i.e. to compute the minimizers of the cost function for a whole range of values of the penalty parameter at once. The algorithm is shown to converge, and a rate of convergence of the cost function is also derived. Furthermore, it is shown that this method is related to iterative algorithms constructed on the basis of the \(\epsilon \) -subdifferential of the prox-simple term. Some numerical examples are provided.