Výsledky vyhledávání - standard stochastic gradient algorithm

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  1. 1

    Particle filtering-based recursive identification for controlled auto-regressive systems with quantised output Autor Ding, Jie, Chen, Jiazhong, Lin, Jinxing, Jiang, Guoping

    ISSN: 1751-8644, 1751-8652
    Vydáno: The Institution of Engineering and Technology 24.09.2019
    Vydáno v IET control theory & applications (24.09.2019)
    “… In this study, a recursive identification algorithm is proposed based on the auxiliary model principle by modifying the standard stochastic gradient algorithm…”
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  2. 2

    Zeroth-Order Nonconvex Stochastic Optimization: Handling Constraints, High Dimensionality, and Saddle Points Autor Balasubramanian, Krishnakumar, Ghadimi, Saeed

    ISSN: 1615-3375, 1615-3383
    Vydáno: New York Springer US 01.02.2022
    “… to the standard stochastic gradient algorithm using only zeroth-order information. To facilitate zeroth-order optimization in high dimensions, we explore the advantages of structural sparsity assumptions. Specifically…”
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  3. 3

    Convergence Analysis of Weighted Stochastic Gradient Identification Algorithms Based on Latest‐Estimation for ARX Models Autor Wu, Ai‐Guo, Fu, Fang‐Zhou, Dong, Rui‐Qi

    ISSN: 1561-8625, 1934-6093
    Vydáno: Hoboken Wiley Subscription Services, Inc 01.01.2019
    Vydáno v Asian journal of control (01.01.2019)
    “…In this paper, weighted stochastic gradient (WSG) algorithms for ARX models are proposed by modifying the standard stochastic gradient identification algorithms…”
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  4. 4

    Partially Coupled Stochastic Gradient Identification Methods for Non-Uniformly Sampled Systems Autor Feng Ding, Guangjun Liu, Liu, Xiaoping Peter

    ISSN: 0018-9286, 1558-2523
    Vydáno: New York, NY IEEE 01.08.2010
    “…) algorithm is proposed to estimate the model parameters with high computational efficiency compared with the standard stochastic gradient (SG) algorithm…”
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  5. 5

    A proportional-integral-derivative-incorporated stochastic gradient descent-based latent factor analysis model Autor Li, Jinli, Yuan, Ye, Ruan, Tao, Chen, Jia, Luo, Xin

    ISSN: 0925-2312, 1872-8286
    Vydáno: Elsevier B.V 28.02.2021
    Vydáno v Neurocomputing (Amsterdam) (28.02.2021)
    “…) is frequently adopted as the learning algorithm. However, a standard SGD algorithm updates a decision parameter with the stochastic gradient on the instant loss only, without considering information described by prior updates…”
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  6. 6

    Stochastic Gradient Markov Chain Monte Carlo Autor Nemeth, Christopher, Fearnhead, Paul

    ISSN: 0162-1459, 1537-274X, 1537-274X
    Vydáno: Alexandria Taylor & Francis 02.01.2021
    “… In this article, we focus on a particular class of scalable Monte Carlo algorithms, stochastic gradient Markov chain Monte Carlo (SGMCMC…”
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  7. 7

    Almost sure convergence rates of stochastic proximal gradient descent algorithm Autor Liang, Yuqing, Xu, Dongpo

    ISSN: 0233-1934, 1029-4945
    Vydáno: Taylor & Francis 02.08.2024
    Vydáno v Optimization (02.08.2024)
    “…Stochastic proximal gradient descent (Prox-SGD) is a standard optimization algorithm for solving stochastic composite optimization problems in machine learning…”
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  8. 8

    Guided Stochastic Gradient Descent Algorithm for inconsistent datasets Autor Sharma, Anuraganand

    ISSN: 1568-4946, 1872-9681
    Vydáno: Elsevier B.V 01.12.2018
    Vydáno v Applied soft computing (01.12.2018)
    “…Stochastic Gradient Descent (SGD) Algorithm, despite its simplicity, is considered an effective and default standard optimization algorithm for machine learning…”
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  9. 9

    Differentially private stochastic gradient descent via compression and memorization Autor Phong, Le Trieu, Phuong, Tran Thi

    ISSN: 1383-7621, 1873-6165
    Vydáno: Elsevier B.V 01.02.2023
    Vydáno v Journal of systems architecture (01.02.2023)
    “… Our differentially private algorithm, called dp-memSGD for short, converges mathematically at the same rate of 1/T as standard stochastic gradient descent (SGD…”
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  10. 10

    Fastest rates for stochastic mirror descent methods Autor Hanzely, Filip, Richtárik, Peter

    ISSN: 0926-6003, 1573-2894
    Vydáno: New York Springer US 01.07.2021
    “… We propose and analyze two new algorithms: Relative Randomized Coordinate Descent (relRCD) and Relative Stochastic Gradient Descent (relSGD…”
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  11. 11

    Linear mixed effects models for non-Gaussian continuous repeated measurement data Autor Asar, Özgür, Bolin, David, Diggle, Peter J., Wallin, Jonas

    ISSN: 0035-9254, 1467-9876, 1467-9876
    Vydáno: Oxford Wiley 01.11.2020
    “… A standard framework for analysing data of this kind is a linear Gaussian mixed effects model within which the outcome variable can be decomposed into fixed effects, time invariant and time-varying…”
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  12. 12

    Adaptive Stochastic Gradient Descent Optimisation for Image Registration Autor Klein, Stefan, Pluim, Josien P. W., Staring, Marius, Viergever, Max A.

    ISSN: 0920-5691, 1573-1405
    Vydáno: Boston Springer US 01.03.2009
    “… The proposed adaptive stochastic gradient descent (ASGD) method is compared to a standard, non-adaptive Robbins-Monro (RM) algorithm…”
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  13. 13

    A Nonlinear PID-Incorporated Adaptive Stochastic Gradient Descent Algorithm for Latent Factor Analysis Autor Li, Jinli, Luo, Xin, Yuan, Ye, Gao, Shangce

    ISSN: 1545-5955, 1558-3783
    Vydáno: IEEE 01.07.2024
    “… from them. However, a standard SGD algorithm updates a latent factor based on the current stochastic gradient only, without the considerations on the past information, making a resultant model suffer from slow convergence…”
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  14. 14

    An Efficient Stochastic Gradient Descent Algorithm to Maximize the Coverage of Cellular Networks Autor Liu, Yaxi, Huangfu, Wei, Zhang, Haijun, Long, Keping

    ISSN: 1536-1276, 1558-2248
    Vydáno: New York IEEE 01.07.2019
    “… A standard gradient descent algorithm and its improved version, namely a Stochastic Gradient Descent (SGD…”
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  15. 15

    A Fuzzy PID-Incorporated Stochastic Gradient Descent Algorithm for Fast and Accurate Latent Factor Analysis Autor Yuan, Ye, Li, Jinli, Luo, Xin

    ISSN: 1063-6706, 1941-0034
    Vydáno: New York IEEE 01.07.2024
    Vydáno v IEEE transactions on fuzzy systems (01.07.2024)
    “… However, an SGD-based LFA model is often stacked by slow convergence since a standard SGD algorithm updates a single latent factor depending on the stochastic gradient of current instance learning…”
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    Latent Factor-Based Recommenders Relying on Extended Stochastic Gradient Descent Algorithms Autor Luo, Xin, Wang, Dexian, Zhou, MengChu, Yuan, Huaqiang

    ISSN: 2168-2216, 2168-2232
    Vydáno: New York IEEE 01.02.2021
    “… Stochastic gradient descent (SGD) is a highly efficient algorithm for building an LF model…”
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  17. 17

    Model-free control of nonlinear stochastic systems with discrete-time measurements Autor Spall, J.C., Cristion, J.A.

    ISSN: 0018-9286
    Vydáno: New York, NY IEEE 01.09.1998
    “… This paper considers the use of the simultaneous perturbation stochastic approximation algorithm which requires only system measurements…”
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  18. 18

    Stochastic Gradient Made Stable: A Manifold Propagation Approach for Large-Scale Optimization Autor Mu, Yadong, Liu, Wei, Liu, Xiaobai, Fan, Wei

    ISSN: 1041-4347, 1558-2191
    Vydáno: New York IEEE 01.02.2017
    “… To improve the stability of stochastic gradient, recent years have witnessed the proposal of several semi-stochastic gradient descent algorithms, which distinguish themselves from standard SGD…”
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    Learning Error Refinement in Stochastic Gradient Descent-Based Latent Factor Analysis via Diversified PID Controllers Autor Li, Jinli, Yuan, Ye, Luo, Xin

    ISSN: 2471-285X, 2471-285X
    Vydáno: Piscataway IEEE 01.10.2025
    “… Unfortunately, a standard SGD algorithm trains a single latent factor relying on the stochastic gradient related to the current learning error only, leading to a slow convergence rate…”
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    Device Specifications for Neural Network Training with Analog Resistive Cross‐Point Arrays Using Tiki‐Taka Algorithms Autor Byun, Jinho, Kim, Seungkun, Kim, Doyoon, Lee, Jimin, Ji, Wonjae, Kim, Seyoung

    ISSN: 2640-4567, 2640-4567
    Vydáno: Weinheim John Wiley & Sons, Inc 01.05.2025
    Vydáno v Advanced intelligent systems (01.05.2025)
    “…Recently, specialized training algorithms for analog cross‐point array‐based neural network accelerators have been introduced to counteract device non…”
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