Výsledky vyhledávání - surrogate gradient algorithm

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  1. 1

    Comments on “Surrogate Gradient Algorithm for Lagrangian Relaxation” Autor Chang, T. S.

    ISSN: 0022-3239, 1573-2878
    Vydáno: Boston Springer US 01.06.2008
    “…This note presents not only a surrogate subgradient method, but also a framework of surrogate subgradient methods…”
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  2. 2

    On the Surrogate Gradient Algorithm for Lagrangian Relaxation Autor Sun, T., Zhao, Q. C., Luh, P. B.

    ISSN: 0022-3239, 1573-2878
    Vydáno: New York, NY Springer 01.06.2007
    “… Based on it, the penalty surrogate subgradient algorithm was further developed to address the homogenous solution issue (Guan et al.: J. Optim. Theory Appl. 113, 65-82, 2002; Zhai et al.: IEEE Trans. Power Syst…”
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  3. 3

    Surrogate Gradient Algorithm for Lagrangian Relaxation Autor Zhao, X., Luh, P. B., Wang, J.

    ISSN: 0022-3239, 1573-2878
    Vydáno: New York, NY Springer 01.03.1999
    “… In the method, all subproblems must be solved optimally to obtain a subgradient direction. In this paper, the surrogate subgradient method is developed, where a proper direction can be obtained without solving optimally all the subproblems…”
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  4. 4

    Synaptic Plasticity Dynamics for Deep Continuous Local Learning (DECOLLE) Autor Kaiser, Jacques, Mostafa, Hesham, Neftci, Emre

    ISSN: 1662-453X, 1662-4548, 1662-453X
    Vydáno: Switzerland Frontiers Research Foundation 12.05.2020
    Vydáno v Frontiers in neuroscience (12.05.2020)
    “… Learning algorithms that approximate gradient backpropagation using local error functions can overcome this challenge…”
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  5. 5

    On the Surrogate Gradient Algorithm forLagrangian Relaxation Autor Sun, T, Zhao, Q C, Luh, P B

    ISSN: 0022-3239
    Vydáno: 01.06.2007
    “… Based on it, the penalty surrogate subgradient algorithm was further developed to address the homogenous solution issue (Guan et al.: J. Optim. Theory Appl. 113, 65-82, 2002; Zhai et al.: IEEE Trans. Power Syst…”
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  6. 6

    Surrogate gradients for analog neuromorphic computing Autor Cramer, Benjamin, Billaudelle, Sebastian, Kanya, Simeon, Leibfried, Aron, Grübl, Andreas, Karasenko, Vitali, Pehle, Christian, Schreiber, Korbinian, Stradmann, Yannik, Weis, Johannes, Schemmel, Johannes, Zenke, Friedemann

    ISSN: 1091-6490, 1091-6490
    Vydáno: United States 25.01.2022
    “… Surrogate gradient learning has emerged as a promising training strategy for spiking networks, but its applicability for analog neuromorphic systems has not been…”
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  7. 7

    Directly training temporal Spiking Neural Network with sparse surrogate gradient Autor Li, Yang, Zhao, Feifei, Zhao, Dongcheng, Zeng, Yi

    ISSN: 0893-6080, 1879-2782, 1879-2782
    Vydáno: United States Elsevier Ltd 01.11.2024
    Vydáno v Neural networks (01.11.2024)
    “… The surrogate gradient (SG) algorithm has recently enabled spiking neural networks to shine in neuromorphic hardware…”
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  8. 8

    The surrogate gradient algorithm for Lagrangian relaxation method Autor Xing Zhao, Luh, P.B., Jihua Wang

    ISBN: 0780341872, 9780780341876
    ISSN: 0191-2216
    Vydáno: IEEE 1997
    “… Numerical results show that the interleaved subgradient method converges faster than the subgradient method, though algorithm convergence was not established…”
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  9. 9

    Supply chain networks design with multi-mode demand satisfaction policy Autor Ardalan, Zaniar, Karimi, Sajad, Naderi, B., Arshadi Khamseh, Alireza

    ISSN: 0360-8352, 1879-0550
    Vydáno: New York Elsevier Ltd 01.06.2016
    Vydáno v Computers & industrial engineering (01.06.2016)
    “…•This paper deals with a supply chain network design with multi-mode demand.•The problem is mathematically formulated as mixed integer linear programming.•A…”
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  10. 10

    Methodology based on spiking neural networks for univariate time-series forecasting Autor Lucas, Sergio, Portillo, Eva

    ISSN: 0893-6080, 1879-2782, 1879-2782
    Vydáno: United States Elsevier Ltd 01.05.2024
    Vydáno v Neural networks (01.05.2024)
    “…–decoding algorithm with a Surrogate Gradient method as supervised training algorithm. In order to validate the generality of the presented methodology sine-wave, 3 UCI and 1 available real-world datasets are used…”
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    A gradient-descent-like learning-based framework in surrogate-assisted evolutionary algorithms for expensive many-objective optimization Autor Sun, Chaoyi, Zhang, Bo, Sun, Hai, Feng, Rui

    ISSN: 2199-4536, 2198-6053
    Vydáno: Cham Springer International Publishing 01.08.2025
    Vydáno v Complex & intelligent systems (01.08.2025)
    “…Surrogate-assisted evolutionary algorithms (SAEAs) commonly depend on traditional offspring generation methods such as simulated binary crossover and polynomial mutation, which often lead to suboptimal search efficiencies…”
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  12. 12

    Supervised Learning in All FeFET-Based Spiking Neural Network: Opportunities and Challenges Autor Dutta, Sourav, Schafer, Clemens, Gomez, Jorge, Ni, Kai, Joshi, Siddharth, Datta, Suman

    ISSN: 1662-453X, 1662-4548, 1662-453X
    Vydáno: Lausanne Frontiers Research Foundation 24.06.2020
    Vydáno v Frontiers in neuroscience (24.06.2020)
    “…The two possible pathways towards artificial intelligence – (i) neuroscience-oriented neuromorphic computing (like spiking neural network SNN) and (ii)…”
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    Safety Performance Boundary Identification of Highly Automated Vehicles: A Surrogate Model-Based Gradient Descent Searching Approach Autor Wang, Yiyun, Yu, Rongjie, Qiu, Shuhan, Sun, Jian, Farah, Haneen

    ISSN: 1524-9050, 1558-0016
    Vydáno: New York IEEE 01.12.2022
    “… A surrogate model was utilized to approximate the safety performance of HAV, and a gradient descent searching…”
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  14. 14

    Gradual Surrogate Gradient Learning in Deep Spiking Neural Networks Autor Chen, Yi, Zhang, Silin, Ren, Shiyu, Qu, Hong

    ISSN: 2379-190X
    Vydáno: IEEE 23.05.2022
    “… In addition, we design a gradual surrogate gradient learning algorithm to ensure that SNNs effectively back-propagate gradient information in the early stage of training and more accurate gradient…”
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    Semi-surrogate modelling of droplets evaporation process via XGBoost integrated CFD simulations Autor Yan, Yihuan, Li, Xueren, Sun, Weijie, Fang, Xiang, He, Fajiang, Tu, Jiyuan

    ISSN: 0048-9697, 1879-1026, 1879-1026
    Vydáno: Netherlands Elsevier B.V 15.10.2023
    Vydáno v The Science of the total environment (15.10.2023)
    “… This study proposed a semi-surrogate model for CFD with integration of the cutting-edge ML algorithm, eXtreme Gradient Boosting (XGB…”
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    Cloud tomographic retrieval algorithms. I: Surrogate minimization method Autor Doicu, Adrian, Doicu, Alexandru, Efremenko, Dmitry, Trautmann, Thomas

    ISSN: 0022-4073, 1879-1352
    Vydáno: Elsevier Ltd 01.01.2022
    “…) the surrogate minimization method for solving the inverse problem has been designed. The retrieval algorithm uses regularization, accelerated projected gradient methods, and two types of surrogate functions…”
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    Probe into the volumetric properties of binary mixtures: Essence of regression-based machine learning algorithms Autor Sharma, Anshu, Li, Li, Garg, Aman, seop Lee, Bong

    ISSN: 0167-7322
    Vydáno: Elsevier B.V 01.04.2024
    Vydáno v Journal of molecular liquids (01.04.2024)
    “… Four different machine learning algorithms are employed for making the surrogate models, namely, Gradient Boosting Machine (GBM), Stacked Ensemble (SE), Random Forest (RF…”
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    An Efficient Hybrid Multi-Objective Optimization Method Coupling Global Evolutionary and Local Gradient Searches for Solving Aerodynamic Optimization Problems Autor Cao, Fan, Tang, Zhili, Zhu, Caicheng, Zhao, Xin

    ISSN: 2227-7390, 2227-7390
    Vydáno: Basel MDPI AG 01.09.2023
    Vydáno v Mathematics (Basel) (01.09.2023)
    “…) and a gradient-based surrogate-assisted multi-objective hybrid algorithm (GS-MOHA) are developed under this framework…”
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    Surrogate models and mixtures of experts in aerodynamic performance prediction for aircraft mission analysis Autor Liem, Rhea P., Mader, Charles A., Martins, Joaquim R.R.A.

    ISSN: 1270-9638, 1626-3219
    Vydáno: Elsevier Masson SAS 01.06.2015
    Vydáno v Aerospace science and technology (01.06.2015)
    “… Second, we improve the kriging surrogate performance by including gradient information in the interpolation…”
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    Surrogate-Model Accelerated Random Search algorithm for global optimization with applications to inverse material identification Autor Brigham, John C., Aquino, Wilkins

    ISSN: 0045-7825, 1879-2138
    Vydáno: Amsterdam Elsevier B.V 15.09.2007
    “… The methodology, referred to as the Surrogate-Model Accelerated Random Search (SMARS) algorithm, is a non-gradient based iterative application of a random search algorithm and the surrogate-model method for optimization…”
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