Search Results - gradient-based optimization algorithm based on the state transition function (STOBO)~

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  1. 1

    A fast optimization approach for seeking Nash equilibrium based on Nikaido–Isoda function, state transition algorithm and Gauss–Seidel technique by Zhou, Xiaojun, Wang, Zheng, Huang, Tingwen

    ISSN: 0925-2312
    Published: Elsevier B.V 01.02.2025
    Published in Neurocomputing (Amsterdam) (01.02.2025)
    “… Specifically, a dynamic state transition algorithm (STA) is proposed to seek global optima of subproblems at each iteration, and the sequential quadratic programming (SQP…”
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    Journal Article
  2. 2

    Gradient-based Optimization Algorithm for Hybrid Loss Function in Low-dose CT Denoising by Mazandarani, Farzan Niknejad, Marcos, Luella, Babyn, Paul, Alirezaie, Javad

    ISSN: 2694-0604, 2694-0604
    Published: IEEE 01.01.2022
    “…)-based denoising network. Objective functions in deep learning algorithms are the main keys for optimizing the parameters of a network and can affect the quality of the denoised image significantly…”
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    Conference Proceeding Journal Article
  3. 3

    An RNA evolutionary algorithm based on gradient descent for function optimization by Wu, Qiuxuan, Zhao, Zikai, Chen, Mingming, Chi, Xiaoni, Zhang, Botao, Wang, Jian, Zhilenkov, Anton A, Chepinskiy, Sergey A

    ISSN: 2288-5048, 2288-4300, 2288-5048
    Published: Oxford Oxford University Press 01.08.2024
    “… Although RNA genetic algorithms offer clear benefits in function optimization, including rapid convergence, they have low accuracy and can easily become trapped in local optima…”
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    Journal Article
  4. 4

    Developments in stochastic optimization algorithms with gradient approximations based on function measurements by Spall, J.C.

    ISBN: 078032109X, 9780780321090
    Published: IEEE 1994
    “…There has recently been much interest in recursive optimization algorithms that rely on measurements of only the objective function, not requiring measurements of the gradient…”
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    Conference Proceeding
  5. 5

    Developments in stochastic optimization algorithms with gradient approximations based on function measurements by Spall, James C.

    ISBN: 078032109X, 9780780321090
    Published: San Diego, CA, USA Society for Computer Simulation International 11.12.1994
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    Conference Proceeding
  6. 6

    Optimization of reward shaping function based on genetic algorithm applied to a cross validated deep deterministic policy gradient in a powered landing guidance problem by Nugroho, Larasmoyo, Andiarti, Rika, Akmeliawati, Rini, Kutay, Ali Türker, Larasati, Diva Kartika, Wijaya, Sastra Kusuma

    ISSN: 0952-1976, 1873-6769
    Published: Elsevier Ltd 01.04.2023
    “…One major capability of a Deep Reinforcement Learning (DRL) agent to control a specific vehicle in an environment without any prior knowledge is decision-making based on a well-designed reward shaping function…”
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    Journal Article
  7. 7

    Scaling-up topology optimization with target stress states via gradient-based algorithms by Mauersberger, Michael, Dexl, Florian, Markmiller, Johannes F.C.

    ISSN: 0045-7949
    Published: Elsevier Ltd 01.07.2025
    Published in Computers & structures (01.07.2025)
    “…•Gradient-based topology optimization was successfully used for target stress states.•Target stress states need an indirect formulation considering compliant mechanisms…”
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    Journal Article
  8. 8

    A consensus algorithm based on multi-agent system with state noise and gradient disturbance for distributed convex optimization by Meng, Xiwang, Liu, Qingshan

    ISSN: 0925-2312, 1872-8286
    Published: Elsevier B.V 28.01.2023
    Published in Neurocomputing (Amsterdam) (28.01.2023)
    “… Taking these factors into consideration, in this paper a distributed algorithm with state noise and gradient disturbance is proposed for solving distributed optimization problem with closed convex…”
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    Journal Article
  9. 9

    Data-Driven Based State Transition Algorithm for Dynamic Optimization by Zhang, Yunxiang, Zhou, Xiaojun, Yang, Chunhua

    Published: IEEE 01.12.2019
    “… In this paper, a novel dynamic optimization technique based on data-driven state transition algorithm (STA…”
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    Conference Proceeding
  10. 10

    State transition probability based sensing duration optimization algorithm in cognitive radio by ZHANG Xiao, WANG Jin-long, WU Qi-hui

    ISSN: 1000-436X
    Published: Editorial Department of Journal on Communications 01.01.2011
    Published in Tongxin Xuebao (01.01.2011)
    “… efficiencies.The relation-ship between sensing duration and state transition probability was analyzed when the licensed channel stays in the idle and busy states respectively,based on which,a state transition…”
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    Journal Article
  11. 11

    State transition probability based sensing duration optimization algorithm in cognitive radio by Zhang, Xiao, Wang, Jin-Long, Wu, Qi-Hui

    ISSN: 1000-436X
    Published: Editorial Department of Journal on Communications 01.08.2011
    Published in Tongxin Xuebao (01.08.2011)
    “… The relationship between sensing duration and state transition probability was analyzed when the licensed channel stays in the idle and busy states respectively, based on which, a state transition…”
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    Journal Article
  12. 12

    Deep Forest Regression Based on Dynamic State Transition Optimization Algorithm by Xia, Heng, Tang, Jian, Qiao, Junfei

    ISSN: 2688-0938
    Published: IEEE 06.11.2020
    Published in Chinese Automation Congress (Online) (06.11.2020)
    “… To achieved more accurate optimization process, the error change rate is used to fine-tuning the state factor during the iteration process, which is further improved with gradient-based refinement…”
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    Conference Proceeding
  13. 13

    Multiagent based state transition algorithm for global optimization by Zhou, Xiaojun

    ISSN: 2331-8422
    Published: Ithaca Cornell University Library, arXiv.org 05.03.2021
    Published in arXiv.org (05.03.2021)
    “…In this paper, a novel multiagent based state transition optimization algorithm with linear convergence rate named MASTA is constructed…”
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    Paper
  14. 14

    A Multi-Agent Centralized Strategy Gradient Reinforcement Learning Algorithm Based on State Transition by Sheng, Lei, Chen, Honghui, Chen, Xiliang

    ISSN: 1999-4893, 1999-4893
    Published: Basel MDPI AG 01.12.2024
    Published in Algorithms (01.12.2024)
    “… strategy gradient algorithm grounded in a local state transition mechanism. In order to solve this challenge, the algorithm learns local state and local state-action representation from local observations and action values, thereby establishing…”
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    Journal Article
  15. 15

    State-Transition-Algorithm-Based Underwater Multiple Objects Localization With Gravitational Field and Its Gradient Tensor by Zhao, Tingting, Tang, Jingtian, Hu, Shuanggui, Lu, Guangyin, Zhou, Xiaojun, Zhong, Yiyuan

    ISSN: 1545-598X, 1558-0571
    Published: Piscataway IEEE 01.02.2020
    Published in IEEE geoscience and remote sensing letters (01.02.2020)
    “… To deal with this issue, a global optimization algorithm, named as the state transition algorithm (STA…”
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    Journal Article
  16. 16

    Dynamic optimization based on state transition algorithm for copper removal process by Huang, Miao, Zhou, Xiaojun, Huang, Tingwen, Yang, Chunhua, Gui, Weihua

    ISSN: 0941-0643, 1433-3058
    Published: London Springer London 01.07.2019
    Published in Neural computing & applications (01.07.2019)
    “… A novel dynamic optimization method based on the state transition algorithm (STA) is investigated for solving this problem, and to improve…”
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    Journal Article
  17. 17

    A State Transition Algorithm based Convolutional Neural Network Optimization Method to Froth Flotation Monitoring by Du, Yangyi, Zhou, Xiaojun

    ISSN: 2688-0938
    Published: IEEE 25.11.2022
    Published in Chinese Automation Congress (Online) (25.11.2022)
    “… Therefore, a state transition algorithm (STA) based CNN optimization framework is proposed in this paper…”
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    Conference Proceeding
  18. 18

    Transition state performance optimization of propfan engine based on DDPG algorithm by Zheng, Hua, Yang, Zhao-xing, Wang, Ya-fan, Zhao, Dong-zhu

    ISSN: 1742-6588, 1742-6596
    Published: Bristol IOP Publishing 01.05.2023
    Published in Journal of physics. Conference series (01.05.2023)
    “… This paper studies the performance optimization control of propfan engine based on deep reinforcement learning algorithm…”
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    Journal Article
  19. 19

    Broad reinforcement learning based adaptive state transition algorithm for global optimization by Du, Yangyi, Zhou, Xiaojun, Yang, Chunhua, Gui, Weihua

    ISSN: 2210-6502
    Published: Elsevier B.V 01.08.2025
    Published in Swarm and evolutionary computation (01.08.2025)
    “…The state transition algorithm (STA) is an efficient intelligent optimization method with superior search capabilities in diverse applications, while its key operator selection strategies depend on manual design…”
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    Journal Article
  20. 20

    An Analysis of Optimization for Car PBS Scheduling Based on Greedy Strategy State Transition Algorithm by Yu, Fengxiao, Peng, Yipu, Li, Jian, Zhou, Guangqi, Chen, Li

    ISSN: 2076-3417, 2076-3417
    Published: Basel MDPI AG 01.05.2023
    Published in Applied sciences (01.05.2023)
    “… This is achieved by establishing a multi-objective mixed-integer optimization scheduling model for PBS and solving the model using a state transition algorithm based on the greedy strategy…”
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    Journal Article