يعرض 1 - 20 نتائج من 42 نتيجة بحث عن '(( primary data wolf optimization algorithm ) OR ( binary complex process optimization algorithm ))', وقت الاستعلام: 1.23s تنقيح النتائج
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    S1 Data - حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Parameter settings for algorithms. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Parameter settings for algorithms. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Average runtime of different algorithms. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Average runtime of different algorithms. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Flowchart of GJO-GWO algorithm. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Detailed information of benchmark functions. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Evaluation metrics of the models’ performance. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Detailed information of datasets. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Friedman test results. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Average number of selected features. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Wilcoxon rank sum test results. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Wilcoxon rank sum test results. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Average number of selected features. حسب Guangwei Liu (181992)

    منشور في 2024
    "…<div><p>This paper proposes a feature selection method based on a hybrid optimization algorithm that combines the Golden Jackal Optimization (GJO) and Grey Wolf Optimizer (GWO). …"
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    Proposed Algorithm. حسب Hend Bayoumi (22693738)

    منشور في 2025
    "…Hence, an Energy-Harvesting Reinforcement Learning-based Offloading Decision Algorithm (EHRL) is proposed. EHRL integrates Reinforcement Learning (RL) with Deep Neural Networks (DNNs) to dynamically optimize binary offloading decisions, which in turn obviates the requirement for manually labeled training data and thus avoids the need for solving complex optimization problems repeatedly. …"
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