Search Results - recursive regularisation parameter selection method

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  1. 1

    Recursive regularisation parameter selection for sparse RLS algorithm by Sun, Dajun, Liu, Lu, Zhang, Youwen

    ISSN: 0013-5194, 1350-911X, 1350-911X
    Published: The Institution of Engineering and Technology 08.03.2018
    Published in Electronics letters (08.03.2018)
    “…In this Letter, the authors propose a recursive regularisation parameter selection method for sparse recursive least squares (RLS) algorithm…”
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    Journal Article
  2. 2

    Recursive Random Lasso (RRLasso) for Identifying Anti-Cancer Drug Targets by Park, Heewon, Imoto, Seiya, Miyano, Satoru

    ISSN: 1932-6203, 1932-6203
    Published: United States Public Library of Science 06.11.2015
    Published in PloS one (06.11.2015)
    “…Uncovering driver genes is crucial for understanding heterogeneity in cancer. L1-type regularization approaches have been widely used for uncovering cancer driver genes based on genome-scale data…”
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    Journal Article
  3. 3

    A multi-frequency iterative imaging method for discontinuous inverse medium problem by Zhang, Lei, Feng, Lixin

    ISSN: 0021-9991, 1090-2716
    Published: Cambridge Elsevier Inc 01.06.2018
    Published in Journal of computational physics (01.06.2018)
    “… The selection criteria of regularization parameter is given by the method of generalized cross-validation…”
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    Journal Article
  4. 4

    A regularised fast recursive algorithm for fraction model identification of nonlinear dynamic systems by Zhang, Li, Li, Kang, Du, Dajun, Li, Yihuan, Fei, Minrui

    ISSN: 0020-7721, 1464-5319
    Published: London Taylor & Francis 19.05.2023
    Published in International journal of systems science (19.05.2023)
    “… To accurately identify the fraction model is however challenging, and this paper presents a regularised fast recursive algorithm (RFRA…”
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    Journal Article
  5. 5

    Tree-Structured Clustering in Fixed Effects Models by Berger, Moritz, Tutz, Gerhard

    ISSN: 1061-8600, 1537-2715
    Published: Alexandria Taylor & Francis 03.04.2018
    “…) method is proposed that identifies clusters of units that share the same effect. The approach reduces the number of parameters to be estimated and is useful…”
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    Journal Article
  6. 6

    Proportionate RLS with l1 norm regularization: Performance analysis and fast implementation by Qin, Zhen, Tao, Jun, Xia, Yili, Yang, Le

    ISSN: 1051-2004, 1095-4333
    Published: Elsevier Inc 15.04.2022
    Published in Digital signal processing (15.04.2022)
    “… Existing methods are designed by either incorporating a sparse regularization term, e.g., l1-norm, into the standard RLS cost function or introducing a proportionate matrix into the updating equation…”
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    Journal Article
  7. 7

    Online sequential echo state network with sparse RLS algorithm for time series prediction by Yang, Cuili, Qiao, Junfei, Ahmad, Zohaib, Nie, Kaizhe, Wang, Lei

    ISSN: 0893-6080, 1879-2782, 1879-2782
    Published: United States Elsevier Ltd 01.10.2019
    Published in Neural networks (01.10.2019)
    “… Thirdly, an adaptive selection mechanism for the ℓ0 or ℓ1 norm regularization parameter is designed…”
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    Journal Article
  8. 8

    A Variable Regularized Recursive Subspace Model Identification Algorithm With Extended Instrumental Variable and Variable Forgetting Factor by Lin, Jian-Qiang, Chan, Shing-Chow, Tan, Hai-Jun

    ISSN: 2169-3536, 2169-3536
    Published: Piscataway IEEE 2020
    Published in IEEE access (2020)
    “…This paper proposes a new smoothly clipped absolute deviation (SCAD) regularized recursive subspace model identification algorithm with square root(SR…”
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    Journal Article
  9. 9

    Recursive regularization for inferring gene networks from time-course gene expression profiles by Shimamura, Teppei, Imoto, Seiya, Yamaguchi, Rui, Fujita, André, Nagasaki, Masao, Miyano, Satoru

    ISSN: 1752-0509, 1752-0509
    Published: London BioMed Central 22.04.2009
    Published in BMC systems biology (22.04.2009)
    “… This problem can be cast as a variable selection problem in Statistics. One of the promising methods for variable selection is the elastic net proposed by Zou and Hastie (2005…”
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    Journal Article
  10. 10

    A new QR decomposition-based RLS algorithm using the split Bregman method for L1-regularized problems by Chu, Y.J., Mak, C.M.

    ISSN: 0165-1684, 1872-7557
    Published: Elsevier B.V 01.11.2016
    Published in Signal processing (01.11.2016)
    “… This algorithm is derived from the recursive least squares (RLS) optimization problem, where the SB method is used to separate the regularization term from the constrained optimization…”
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    Journal Article
  11. 11

    Recursive least square–based fast sparse multipath channel estimation by Chen, Yu, Gui, Guan

    ISSN: 1074-5351, 1099-1131
    Published: Chichester Wiley Subscription Services, Inc 10.09.2017
    “… For the stable wireless propagation to be ensured, linear adaptive channel estimation algorithms, eg, recursive least square and least mean square, have been developed…”
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    Journal Article
  12. 12

    Recursive SURE for iterative reweighted least square algorithms by Xue, Feng, Yagola, Anatoly G., Liu, Jiaqi, Meng, Gang

    ISSN: 1741-5977, 1741-5985
    Published: Taylor & Francis 03.05.2016
    “…Iterative re-weighted least square (IRLS) algorithms for -minimization problems require to select proper value of regularization parameter, for which Stein's unbiased risk estimate (SURE…”
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    Journal Article
  13. 13

    A New Transform-Domain Regularized Recursive Least M-Estimate Algorithm for a Robust Linear Estimation by Chan, S C, Zhang, Z G, Chu, Y J

    ISSN: 1549-7747, 1558-3791
    Published: New York IEEE 01.02.2011
    “… regularization parameters are developed for recursive implementation of the TD-R-ME algorithm. Simulation results show that the proposed TD regularized QR recursive least M-estimate (TD-R-QRRLM…”
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    Journal Article
  14. 14

    A recursive predictive risk estimate for proximal algorithms by Xue, Feng, Du, Runle, Liu, Jiaqi

    ISSN: 2379-190X
    Published: IEEE 01.03.2016
    “…For accurate signal reconstruction, proximal gradient methods generally require proper selection of regularization parameter…”
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    Conference Proceeding Journal Article
  15. 15

    Regularization Based Sparse Support Recovery for Asynchronous Multicarrier Modulation Signals in Cognitive Radio Networks by Baral, Ashwin Bhobani, Narngoong, Won, Torlak, Murat

    ISSN: 2162-1241
    Published: IEEE 19.10.2022
    “…) based regularization method for identifying the active subcarriers of the asynchronous multicarrier modulation signals at the sub-Nyquist sampling rate…”
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    Conference Proceeding
  16. 16

    Covariance regularization in inverse space by Ueno, Genta, Tsuchiya, Takashi

    ISSN: 0035-9009, 1477-870X, 1477-870X
    Published: Chichester, UK John Wiley & Sons, Ltd 01.07.2009
    “… Modelling of the covariance structure consists of the regularization of a sample covariance and the constraint of a dynamic relationship…”
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    Journal Article
  17. 17

    A novel locally regularized automatic construction method for RBF neural models by Du, Dajun, Li, Xue, Fei, Minrui, Irwin, George W.

    ISSN: 0925-2312, 1872-8286
    Published: Elsevier B.V 03.12.2012
    Published in Neurocomputing (Amsterdam) (03.12.2012)
    “… This is achieved by proposing a locally regularized automatic construction (LRAC) method which combines a recently proposed fast recursive algorithm (FRA…”
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    Journal Article
  18. 18

    Application of Auto-Regulative Sparse Variational Mode Decomposition in Mechanical Fault Diagnosis by Li, Huipeng, Zhou, Fengxing, Xu, Bo, Yan, Baokang, Zhou, Fengqi

    ISSN: 2079-9292, 2079-9292
    Published: Basel MDPI AG 01.07.2023
    Published in Electronics (Basel) (01.07.2023)
    “…The variational mode decomposition (VMD) method has been widely applied in the field of mechanical fault diagnosis as an excellent non-recursive signal processing tool…”
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    Journal Article
  19. 19

    Recursive Mahalanobis Separability Measure for Gene Subset Selection by Mao, Kezhi Z, Wenyin Tang

    ISSN: 1545-5963, 1557-9964, 1557-9964
    Published: United States IEEE 01.01.2011
    “…Mahalanobis class separability measure provides an effective evaluation of the discriminative power of a feature subset, and is widely used in feature selection…”
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    Journal Article
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