Algorithms for Sparsity-Constrained Optimization

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This thesis demonstrates techniques that provide faster and more accurate solutions to a variety of problems in machine learning and signal processing. The author proposes a "greedy" algorithm, deriving sparse solutions with guarantees of optimality. The use of this algorithm removes many of the inaccuracies that occurred with the use of previous models.
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This thesis demonstrates techniques that provide faster and more accurate solutions to a variety of problems in machine learning and signal processing. The author proposes a "greedy" algorithm, deriving sparse solutions with guarantees of optimality. The use of this algorithm removes many of the inaccuracies that occurred with the use of previous models.
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  • Formats: pdf
  • ISBN: 9783319018812
  • Publication Date: 7 Oct 2013
  • Publisher: Springer International Publishing
  • Product language: English
  • Drm Setting: DRM