Abstract
In this work we propose an accelerated algorithm that combines various techniques, such as inertial proximal algorithms, Tseng’s splitting algorithm, and more, for solving the common variational inclusion problem in real Hilbert spaces. We establish a strong convergence theorem of the algorithm under standard and suitable assumptions and illustrate the applicability and advantages of the new scheme for signal recovering problem arising in compressed sensing.
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CITATION STYLE
Suparatulatorn, R., Cholamjiak, W., Gibali, A., & Mouktonglang, T. (2021). A parallel Tseng’s splitting method for solving common variational inclusion applied to signal recovery problems. Advances in Difference Equations, 2021(1). https://doi.org/10.1186/s13662-021-03647-8
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