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      A Weak Selection Stochastic Gradient Matching Pursuit Algorithm

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          Abstract

          In the existing stochastic gradient matching pursuit algorithm, the preliminary atomic set includes atoms that do not fully match the original signal. This weakens the reconstruction capability and increases the computational complexity. To solve these two problems, a new method is proposed. Firstly, a weak selection threshold method is proposed to select the atoms that best match the original signal. If the absolute gradient coefficients were greater than the product of the maximum absolute gradient coefficient and the threshold that was set according to the experiments, then we selected the atoms that corresponded to the absolute gradient coefficients as the preliminary atoms. Secondly, if the scale of the current candidate atomic set was equal to the previous support atomic set, then the loop was exited; otherwise, the loop was continued. Finally, before the transition estimation of the original signal was calculated, we determined whether the number of columns of the candidate atomic set was smaller than the number of rows of the measurement matrix. If this condition was satisfied, then the current candidate atomic set could be regarded as the support atomic set and the loop was continued; otherwise, the loop was exited. The simulation results showed that the proposed method has better reconstruction performance than the stochastic gradient algorithms when the original signals were a one-dimensional sparse signal, a two-dimensional image signal, and a low-rank matrix signal.

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          Sparsity-Based Two-Dimensional DOA Estimation for Coprime Array: From Sum–Difference Coarray Viewpoint

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            Deep Domain Generalization With Structured Low-Rank Constraint

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              Tradeoffs Between Convergence Speed and Reconstruction Accuracy in Inverse Problems

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                Author and article information

                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                21 May 2019
                May 2019
                : 19
                : 10
                : 2343
                Affiliations
                [1 ]Key Laboratory of Modern Power System Simulation and Control & Renewable Energy Technology, Ministry of Education (Northeast Electric Power University), Jilin 132012, China; huyunfeng22@ 123456163.com
                [2 ]College of Electrical and Information Engineering, Beihua University, Jilin 132013, China; jia_yanfei@ 123456163.com
                Author notes
                [* ]Correspondence: zhao_liquan@ 123456163.com ; Tel.: +86-150-4320-1901
                Author information
                https://orcid.org/0000-0002-9499-1911
                https://orcid.org/0000-0002-2572-5433
                Article
                sensors-19-02343
                10.3390/s19102343
                6566407
                31117279
                ee4b71a8-857a-4885-b873-93dc6cec2386
                © 2019 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 20 April 2019
                : 15 May 2019
                Categories
                Article

                Biomedical engineering
                compressed sensing,low rank matrix,stochastic gradient,weak selection method,reliability verification strategy,reconstruction performance

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