يعرض 21 - 40 نتائج من 136 نتيجة بحث عن '(( primary data processing optimization algorithm ) OR ( binary ai driven optimization algorithm ))', وقت الاستعلام: 0.49s تنقيح النتائج
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    Image 1_A multimodal AI-driven framework for cardiovascular screening and risk assessment in diverse athletic populations: innovations in sports cardiology.png حسب Minjin Guo (22751300)

    منشور في 2025
    "…</p>Methods<p>To address these challenges, we propose a novel AI-driven framework that incorporates two key methodological innovations: CardioSpectra, a structured sparse inference model, and Risk-Stratified Exertional Embedding (RSEE), a domain-specific representation learning strategy. …"
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    The robustness test results of the model. حسب Xini Fang (20861990)

    منشور في 2025
    "…Following this, the FCM clustering algorithm is utilized for pre-processing sample data to improve the efficiency and accuracy of data classification. …"
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    Performance metrics for BrC. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Proposed CVAE model. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Proposed methodology. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Loss vs. Epoch. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Sample images from the BreakHis dataset. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Accuracy vs. Epoch. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Segmentation results of the proposed model. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    S1 Dataset - حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    CSCO’s flowchart. حسب Afnan M. Alhassan (18349378)

    منشور في 2024
    "…Consequently, the prediction of BrC depends critically on the quick and precise processing of imaging data. The primary reason deep learning models are used in breast cancer detection is that they can produce findings more quickly and accurately than current machine learning-based techniques. …"
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    Models’ performance without optimization. حسب Muhammad Usman Tariq (11022141)

    منشور في 2024
    "…These models were calibrated and evaluated using a comprehensive dataset that includes confirmed case counts, demographic data, and relevant socioeconomic factors. To enhance the performance of these models, Bayesian optimization techniques were employed. …"
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