Výsledky vyhledávání - Computational Learning Theory and Optimization

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    An in-principle super-polynomial quantum advantage for approximating combinatorial optimization problems via computational learning theory Autor Pirnay, Niklas, Ulitzsch, Vincent, Wilde, Frederik, Eisert, Jens, Seifert, Jean-Pierre

    ISSN: 2375-2548, 2375-2548
    Vydáno: United States 15.03.2024
    Vydáno v Science advances (15.03.2024)
    “… In this work, by resorting to computational learning theory and cryptographic notions, we give a fully constructive proof that quantum computers feature a super-polynomial advantage over classical…”
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    Journal Article
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    An in-principle super-polynomial quantum advantage for approximating combinatorial optimization problems via computational learning theory Autor Pirnay, Niklas, Ulitzsch, Vincent, Wilde, Frederik, Eisert, Jens, Seifert, Jean-Pierre

    ISSN: 2331-8422
    Vydáno: Ithaca Cornell University Library, arXiv.org 13.02.2024
    Vydáno v arXiv.org (13.02.2024)
    “… In this work, by resorting to computational learning theory and cryptographic notions, we prove that quantum computers feature an in-principle super-polynomial advantage over classical computers…”
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    Paper
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    Computational optimization of associative learning experiments Autor Melinscak, Filip, Bach, Dominik R.

    ISSN: 1553-7358, 1553-734X, 1553-7358
    Vydáno: United States Public Library of Science 01.01.2020
    Vydáno v PLoS computational biology (01.01.2020)
    “… This challenge is well exemplified in associative learning research. Associative learning theory has a rich tradition of computational modeling, resulting in a growing space…”
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    Journal Article
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    The Integration of the RBL-STEM Learning Model and Graph Theory in Solving Transportation and Logistics Optimization Problems to Enhance Students' Computational Thinking Skills Autor Marsidi, Marsidi

    ISSN: 2337-9421, 2581-1290
    Vydáno: 06.04.2025
    “…Abstract This study aims to integrate the Research-Based Learning (RBL) model with the STEM approach and graph theory in solving transportation and logistics optimization problems to enhance students…”
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    Computational approaches to fMRI analysis Autor Cohen, Jonathan D, Daw, Nathaniel, Engelhardt, Barbara, Hasson, Uri, Li, Kai, Niv, Yael, Norman, Kenneth A, Pillow, Jonathan, Ramadge, Peter J, Turk-Browne, Nicholas B, Willke, Theodore L

    ISSN: 1097-6256, 1546-1726, 1546-1726
    Vydáno: New York Nature Publishing Group US 01.03.2017
    Vydáno v Nature neuroscience (01.03.2017)
    “… and increasingly large fMRI datasets. In this paper, the authors review the cutting edge of such computational analyses and discuss future opportunities and challenges…”
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    Molecular free energy optimization on a computational graph Autor Cao, Xiaoyong, Tian, Pu

    ISSN: 2046-2069, 2046-2069
    Vydáno: England Royal Society of Chemistry 06.04.2021
    Vydáno v RSC advances (06.04.2021)
    “… Computational graph underlies major artificial intelligence platforms and is proven to facilitate training, optimization and learning…”
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    Journal Article
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    Machine Learning Orchestrating the Materials Discovery and Performance Optimization of Redox Flow Battery Autor Tang, Lina, Leung, Puiki, Xu, Qian, Flox, Cristina

    ISSN: 2196-0216, 2196-0216
    Vydáno: Weinheim John Wiley & Sons, Inc 01.08.2024
    Vydáno v ChemElectroChem (01.08.2024)
    “…, active learning and various generative models. The collaborative integration of ML with computational techniques and experimental methods, anchored in experimentally validated Density Functional Theory (DFT…”
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    Journal Article
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    Uncertainty Based Machine Learning-DFT Hybrid Framework for Accelerating Geometry Optimization Autor Singh, Akksay, Wang, Jiaqi, Henkelman, Graeme, Li, Lei

    ISSN: 1549-9626, 1549-9626
    Vydáno: United States 26.11.2024
    “… Here, we present a delta method-based neural network-density functional theory (DFT) hybrid optimizer to improve the computational efficiency of geometry optimization…”
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    Active Learning‐Assisted Exploration of [PO40Mo12]3− for Alzheimer's Therapy Insights Autor Fang, Lincan, Peng, Ruoxue, Xia, Luping, Zhuang, Gui‐lin

    ISSN: 2198-3844, 2198-3844
    Vydáno: Germany John Wiley & Sons, Inc 01.11.2025
    Vydáno v Advanced science (01.11.2025)
    “…‐learning Bayesian Optimization (BO) and density functional theory (DFT) is employed to explore low…”
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    Computational Optimizations for Machine Learning

    ISBN: 3036531874, 3036531866, 9783036531861, 9783036531878
    Vydáno: Basel MDPI - Multidisciplinary Digital Publishing Institute 2022
    “… “Computational Optimizations for Machine Learning” of the MDPI journal Mathematics, which cover a wide range of topics connected to the theory and applications of machine learning, neural networks and artificial intelligence…”
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    E-kniha
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    Meta-Learning With Differentiable Convex Optimization Autor Lee, Kwonjoon, Maji, Subhransu, Ravichandran, Avinash, Soatto, Stefano

    ISSN: 1063-6919
    Vydáno: IEEE 01.06.2019
    “…Many meta-learning approaches for few-shot learning rely on simple base learners such as nearest-neighbor classifiers…”
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    Konferenční příspěvek
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    Accelerating CALYPSO structure prediction by data-driven learning of a potential energy surface Autor Tong, Qunchao, Xue, Lantian, Lv, Jian, Wang, Yanchao, Ma, Yanming

    ISSN: 1364-5498, 1364-5498
    Vydáno: England 26.10.2018
    Vydáno v Faraday discussions (26.10.2018)
    “… However, they are generally restricted to small systems owing to the heavy computational cost of the underlying density functional theory (DFT…”
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    Machine Learning for Computational Heterogeneous Catalysis Autor Schlexer Lamoureux, Philomena, Winther, Kirsten T., Garrido Torres, Jose Antonio, Streibel, Verena, Zhao, Meng, Bajdich, Michal, Abild‐Pedersen, Frank, Bligaard, Thomas

    ISSN: 1867-3880, 1867-3899
    Vydáno: Weinheim Wiley Subscription Services, Inc 21.08.2019
    Vydáno v ChemCatChem (21.08.2019)
    “… – from economics to physics. In the area of materials science and computational heterogeneous catalysis, this revolution has led to the development of scientific data repositories, as well as data mining and machine learning…”
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    Advanced Computational Methods for Modeling, Prediction and Optimization—A Review Autor Krzywanski, Jaroslaw, Sosnowski, Marcin, Grabowska, Karolina, Zylka, Anna, Lasek, Lukasz, Kijo-Kleczkowska, Agnieszka

    ISSN: 1996-1944, 1996-1944
    Vydáno: Switzerland MDPI AG 16.07.2024
    Vydáno v Materials (16.07.2024)
    “…This paper provides a comprehensive review of recent advancements in computational methods for modeling, simulation, and optimization of complex systems in materials engineering, mechanical…”
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    Reduction of computational error by optimizing SVR kernel coefficients to simulate concrete compressive strength through the use of a human learning optimization algorithm Autor Huang, Jiandong, Sun, Yuantian, Zhang, Junfei

    ISSN: 0177-0667, 1435-5663
    Vydáno: London Springer London 01.08.2022
    Vydáno v Engineering with computers (01.08.2022)
    “… to predict and optimize the compressive strength of concrete samples. For optimization purposes, this study used a human learning optimization (HLO…”
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    Computational Discovery of Transition-metal Complexes: From High-throughput Screening to Machine Learning Autor Nandy, Aditya, Duan, Chenru, Taylor, Michael G, Liu, Fang, Steeves, Adam H, Kulik, Heather J

    ISSN: 1520-6890, 1520-6890
    Vydáno: United States 25.08.2021
    Vydáno v Chemical reviews (25.08.2021)
    “… The review will cover the development, promise, and limitations of "traditional" computational chemistry (i.e…”
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    Expensive Multiobjective Optimization by Relation Learning and Prediction Autor Hao, Hao, Zhou, Aimin, Qian, Hong, Zhang, Hu

    ISSN: 1089-778X, 1941-0026
    Vydáno: New York IEEE 01.10.2022
    “…Expensive multiobjective optimization problems pose great challenges to evolutionary algorithms due to their costly evaluation…”
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    Min-Max Cost Optimization for Efficient Hierarchical Federated Learning in Wireless Edge Networks Autor Feng, Jie, Liu, Lei, Pei, Qingqi, Li, Keqin

    ISSN: 1045-9219, 1558-2183
    Vydáno: New York IEEE 01.11.2022
    “…Federated learning is a distributed machine learning technology that can protect users' data privacy, so it has attracted more and more attention in the industry and academia…”
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