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A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems

Amir Beck; Marc Teboulle · SIAM Journal on Imaging Sciences · 2009

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We consider the class of iterative shrinkage-thresholding algorithms (ISTA) for solving linear inverse problems arising in signal/image processing. This class of methods, which can be viewed as an extension of the classical gradient algorithm, is attractive due to its simplicity and thus is adequate for solving large-scale problems even with dense matrix data. However, such methods are also known to converge quite slowly. In this paper we present a new fast iterative shrinkage-thresholding algorithm (FISTA) which preserves the computational simplicity of ISTA but with a global rate of convergence which is proven to be significantly better, both theoretically and practically. Initial promising numerical results for wavelet-based image deblurring demonstrate the capabilities of FISTA which is shown to be faster than ISTA by several orders of magnitude.

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APA 7

Beck, A. & Teboulle, M. (2009). A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems. https://doi.org/10.1137/080716542

MLA

Beck, Amir, and Marc Teboulle. "A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems." 2009. https://doi.org/10.1137/080716542.

Chicago

Beck, Amir and Marc Teboulle. 2009. "A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems.". https://doi.org/10.1137/080716542.

Harvard

Beck, A. and Teboulle, M. 2009, A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems, SIAM Journal on Imaging Sciences, available at: https://doi.org/10.1137/080716542 [Accessed 7 Aug. 2026].

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Title
A Fast Iterative Shrinkage-Thresholding Algorithm for Linear Inverse Problems
Author / contributors
Amir Beck; Marc Teboulle
Publisher
SIAM Journal on Imaging Sciences
Publication year
2009
Language
English

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