Výsledky vyhľadávania - Computing methodologies Machine learning Machine learning approaches Kernel methods

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    Quantum Computing With Kernel Methods for Machine Learning

    Vydavateľské údaje: Washington, D.C Targeted News Service 03.06.2025
    Vydané v Targeted News Service (03.06.2025)
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    Newsletter
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    Google LLC Files Patent Application for Quantum Computing with Kernel Methods for Machine Learning

    Vydavateľské údaje: New Delhi Athena Information Solutions Pvt. Ltd 02.08.2023
    Vydané v Indian Patents News (02.08.2023)
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    Newsletter
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    A Kernel-based Machine Learning Approach to Computing Quasiparticle Energies within Many-Body Green's Functions Theory Autor Tirimbó, Gianluca, Çaylak, Onur, Baumeier, Björn

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 03.12.2020
    Vydané v arXiv.org (03.12.2020)
    “…We present a Kernel Ridge Regression (KRR) based supervised learning method combined with Genetic Algorithms (GAs…”
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    Paper
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    Using Kernel Methods in a Learning Machine Approach for Multispectral Data Classification. An Application in Agriculture Autor Gonzalez, Adrian

    ISBN: 953307003X, 9789533070032
    Vydavateľské údaje: IntechOpen 01.01.2009
    “…Using Kernel Methods in a Learning Machine Approach for Multispectral Data Classification…”
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    Kapitola
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    Polynomial chaos vs kernel machine learning methods for uncertainty quantification: A comparative study and benchmarking with the hybrid PCE-GPR approach Autor Manfredi, Paolo

    ISSN: 0045-7825
    Vydavateľské údaje: Elsevier B.V 01.02.2026
    “… Besides popular methods based on polynomial chaos expansion (PCE), recent works explored the application of machine learning regression methods to UQ, particularly…”
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    Journal Article
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    Selection of a Suitable Rock Mixing Method for Computing Gardner’s Constant Through a Machine Learning (ML) Approach to Estimate the Compressional Velocity: A study from the Jaisalmer sub-basin, India Autor Yalamanchi, Pydiraju, Datta Gupta, Saurabh

    ISSN: 0033-4553, 1420-9136
    Vydavateľské údaje: Cham Springer International Publishing 01.05.2021
    Vydané v Pure and applied geophysics (01.05.2021)
    “…The frequent variability of petrophysical properties makes hydrocarbon exploration challenging in carbonate reservoirs. Nowadays, quantitative interpretation…”
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    Journal Article
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    MAGIKA: AI-Powered Content-Type Detection Autor Fratantonio, Yanick, Invernizzi, Luca, Farah, Loua, Thomas, Kurt, Zhang, Marina, Albertini, Ange, Galilee, Francois, Metitieri, Giancarlo, Cretin, Julien, Petit-Bianco, Alex, Tao, David, Bursztein, Elie

    ISSN: 1558-1225
    Vydavateľské údaje: IEEE 26.04.2025
    “… Under the hood, Magika employs a deep learning model that can execute on a single CPU with just 1MB of memory to store the model's weights…”
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    Finding Ethereum Smart Contracts Security Issues by Comparing History Versions Autor Chen, Jiachi

    ISSN: 2643-1572
    Vydavateľské údaje: ACM 01.09.2020
    “… In this paper, we propose a deep learning-based method to find security issues of Ethereum smart contracts by finding the updated version of a destructed contract…”
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    LA-MTL: Latency-Aware Automated Multi-Task Learning Autor Sampath, Shambhavi Balamuthu, Sawani, Sami, Thoma, Moritz, Frickenstein, Lukas, Mori, Pierpaolo, Fasfous, Nael, Vemparala, Manoj Rohit, Frickenstein, Alexander, Schlichtmann, Ulf, Passerone, Claudio, Stechele, Walter

    Vydavateľské údaje: IEEE 22.06.2025
    “…Multi-Task Learning (MTL) aims to unify a variety of tasks into a single network for improved training and inference efficiency…”
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    When Less is Enough: Positive and Unlabeled Learning Model for Vulnerability Detection Autor Wen, Xin-Cheng, Wang, Xinchen, Gao, Cuiyun, Wang, Shaohua, Liu, Yang, Gu, Zhaoquan

    ISSN: 2643-1572
    Vydavateľské údaje: IEEE 11.09.2023
    “…Automated code vulnerability detection has gained increasing attention in recent years. The deep learning (DL…”
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    Scalable Industrial Control System Analysis via XAI-Based Gray-Box Fuzzing Autor Kur, Justin, Chen, Jingshu, Huang, Jun

    ISSN: 2643-1572
    Vydavateľské údaje: IEEE 11.09.2023
    “… To address these limitations, we propose XAI-based gray-box fuzzing, a novel approach that leverages explainable AI and machine learning modeling of ICS to accurately identify a small set…”
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    Function-Level Vulnerability Detection Through Fusing Multi-Modal Knowledge Autor Ni, Chao, Guo, Xinrong, Zhu, Yan, Xu, Xiaodan, Yang, Xiaohu

    ISSN: 2643-1572
    Vydavateľské údaje: IEEE 11.09.2023
    “…Software vulnerabilities damage the functionality of software systems. Recently, many deep learning-based approaches have been proposed to detect vulnerabilities at the function level by using one or a few different modalities (e.g…”
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    MCBound: An Online Framework to Characterize and Classify Memory/Compute-bound HPC Jobs Autor Antici, Francesco, Bartolini, Andrea, Kiziltan, Zeynep, Babaoglu, Ozalp, Kodama, Yuetsu

    Vydavateľské údaje: IEEE 17.11.2024
    “…Modern High-Performance Computing (HPC) systems play a fundamental role in driving scientific research, as they execute computationally intensive jobs originating from diverse domains…”
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    Using Static Analysis to Aid Monolith to Microservice System Transformation: Tuning Fuzzy c-Means in a VAE-Based GNN Approach Autor Sooksatra, Korn, Hossain Chy, Md Showkat, Arju, Md Ashfakur Rahman, Cerny, Tomas, Rivas, Pablo

    ISSN: 2151-0849
    Vydavateľské údaje: ACM 27.10.2024
    “… This paper explores a machine learning-driven approach to decompose monolithic systems into microservices, targeting maintainability and modularization…”
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    hws: A Tool for Monitoring Hardware Metrics Across Diverse Vendors: A Case Study on Hyperparameter Optimization Algorithms Autor Breyer, Marcel, Van Craen, Alexander, Domanski, Peter, Pfluger, Dirk

    Vydavateľské údaje: IEEE 17.11.2024
    “…Due to modern hardware's constantly growing energy demands, it is important to consider energy efficiency and power consumption. Especially in the age of AI,…”
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    Semantic Segmentation of Geometric Primitives in Dense 3D Point Clouds Autor Stanescu, Ana, Fleck, Philipp, Schmalstieg, Dieter, Arth, Clemens

    Vydavateľské údaje: IEEE 01.10.2018
    “… The core contribution is an efficient method for fitting of geometric primitives based on machine learning…”
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