Showing 2,541 - 2,560 results of 3,801 for search '"Machine Learning"', query time: 0.08s Refine Results
  1. 2541

    Completion of the Central Italy daily precipitation instrumental data series from 1951 to 2019 by Gamal AbdElNasser Allam Abouzied, Guoqiang Tang, Simon Michael Papalexiou, Martyn P. Clark, Eleonora Aruffo, Piero Di Carlo

    Published 2025-01-01
    “…Multi‐strategy merging strategy based on the Modified Kling‐Gupta efficiency (MS1) shows the highest performance as an individual precipitation gap‐filling strategy. However, the machine learning strategy using random forest (ML3) has the most outstanding share in the final estimates among all other strategies. …”
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  2. 2542

    Peningkatan Akurasi Klasifikasi Algoritma C 4.5 Menggunakan Teknik Bagging pada Diagnosis Penyakit Jantung by Erwin Prasetyo, Budi Prasetiyo

    Published 2020-10-01
    “…Data penyakit jantung diambil dari dataset UCI Machine Learning Repository. Tujuan dari penulis melakukan penelitian ini yaitu untuk mengetahui penerapan teknik bagging pada algoritma C4.5, mengetahui hasil akurasi dalam algoritma C4.5, dan membandingkan tingkat akurasi dari penerapan teknik bagging pada algoritma C4.5. …”
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  3. 2543

    The role of continuous monitoring in acute-care settings for predicting all-cause 30-day hospital readmission: A pilot study by Michael Joseph Pettinati, Kyriakos Vattis, Henry Mitchell, Nicole Alexis Rosario, David Michael Levine, Nandakumar Selvaraj

    Published 2025-01-01
    “…The influence of different data sources, including remotely monitored continuous vital signs and activity, on machine learning (ML) models’ performances is examined for predicting all-cause unplanned 30-day readmission. …”
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    Article
  4. 2544

    Supraglacial Lake Depth Retrieval from ICESat-2 and Multispectral Imagery Datasets by Quan Zhou, Qi Liang, Wanxin Xiao, Teng Li, Lei Zheng, Xiao Cheng

    Published 2025-01-01
    “…In this study, we present a machine learning-based method for estimating the depth of supraglacial lakes through the combination of ICESat-2 ATL03 data with multispectral imagery. …”
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  5. 2545

    Survey on Byzantine attacks and defenses in federated learning by ZHAO Xiaojie, SHI Jinqiao, HUANG Mei, KE Zhenhan, SHEN Liyan

    Published 2024-12-01
    “…Federated learning as an emerging distributed machine learning, can solve the problem of data islands. …”
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  6. 2546

    treeducken: An R package for simulating cophylogenetic systems by Wade Dismukes, Tracy A. Heath

    Published 2021-08-01
    “…This allows easier performance testing of methods and has potential applications in machine learning (ML) and approximate Bayesian computation (ABC) approaches.…”
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  7. 2547

    E-commerce Service Chatbot Application Design using KNN and Random Forest Methods by Fardan Zamakhsyari

    Published 2025-01-01
    “…In response to this need, the researcher has developed a chatbot application aimed at improving customer service, employing machine learning techniques with the KNN and Random Forest algorithms. …”
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    Article
  8. 2548

    Correlation Analysis between Exchange Rate Fluctuations and Oil Price Changes Based on Copula Function by Xiaodong Huang

    Published 2022-01-01
    “…Moreover, this paper improves some defects in the algorithm and combines some new learning frameworks in machine learning to generalize the copula function to a variety of learning models. …”
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    Article
  9. 2549

    Advances in Autism: a bibliometric analysis by Mehereen Chowdhury, Murdoc Gould, Latha Ganti

    Published 2024-11-01
    “…Institutions like Stanford University and McGill University demonstrate substantial research output, while authors such as Dennis Wall are prominent with contributions that make diagnosing Autism much more efficient with the use of AI. Keywords like "Machine learning", "Autism spectrum disorder", and “Children” dominate, reflecting ongoing efforts to leverage technology for ASD interventions. …”
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  10. 2550

    A systemic approach and multiscale data management. A ‘refrigerator’ case study by Paolo Marco Tamborrini, Eleonora Fiore

    Published 2020-06-01
    “…Many digital technologies, such as the Internet of Things, Artificial Intelligence and Machine Learning, could radically change the way of conceiving a design process, especially when they are used to retrieve essential information to define a problem, identify the requirements and support design decisions, all of which are typical of the pre-design phase. …”
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  11. 2551

    Sandy Soil Liquefaction Prediction Based on Clustering-Binary Tree Neural Network Algorithm Model by Yu Wang, Jiachen Wang

    Published 2021-01-01
    “…The neural network algorithm is a small sample machine learning method built on the statistical learning theory and the lowest structural risk principle. …”
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  12. 2552

    Implementation of the C4.5 Algorithm in Predicting the Interest of Prospective Students in Choosing Higher Education by Bambang Triraharjo, Prilian Ayu Minarni, Baskoro

    Published 2025-01-01
    “…In our contribution, we explain how Fuzzy c - means based machine learning can be used for oil data governance. This deep artificial intelligence concept, which we will use in addition to fuzzy logic, by applying Fuzzy c - means for good training can enable the decision-maker a better governance policy.…”
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  13. 2553

    Application of Intelligent Signal Reflection in the Communication Model of an Electronic Controller by Lan Lan

    Published 2022-01-01
    “…It combines the GAMP algorithm with machine learning, so it can achieve similar performance with much lower computational complexity than the traditional block sparse Bayesian learning algorithm. …”
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  14. 2554

    Use of Active Learning to Design Wind Tunnel Runs for Unsteady Cavity Pressure Measurements by Ankur Srivastava, Andrew J. Meade

    Published 2014-01-01
    “…In this work, the feasibility of an active machine learning technique to design wind tunnel runs using proxy data is tested. …”
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  15. 2555

    The Use of Big Data to Improve Human Health: How Experience From other Industries Will Shape the Future by Timothy E Hewett, Greg Olsen, Mark Atkinson

    Published 2021-11-01
    “…This commentary discusses what those differences are (Project vs Product Focus, Independent vs Integrated Efforts, Causality vs Prediction Driven, Statistical vs Machine Learning Centricity) why they exist, and the future convergence that we believe is on the horizon. …”
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  16. 2556

    Advancements, Trends and Future Prospects of Lower Limb Prosthesis by Muhammad Asif, Mohsin Islam Tiwana, Umar Shahbaz Khan, Waqar Shahid Qureshi, Javaid Iqbal, Nasir Rashid, Noman Naseer

    Published 2021-01-01
    “…This review presents for lower limb prosthesis; the study of lower limb amputation, design & development, control strategies & machine learning algorithms, the psycho-social impact of prosthetic users, and design trends in patents. …”
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  17. 2557

    A new and automated risk prediction of coronary artery disease using clinical endpoints and medical imaging-derived patient-specific insights: protocol for the retrospective GeoCAD... by Louisa Jorm, Daniel Moses, Dona Adikari, Ramtin Gharleghi, Shisheng Zhang, Arcot Sowmya, Sze-Yuan Ooi, Susann Beier

    Published 2022-06-01
    “…We propose a new risk prediction method predicated on CT coronary angiography (CTCA) data and state-of-the-art machine learning methods based on a better understanding of anatomical risk for CAD. …”
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  18. 2558

    Determination of the quantitative content of chlorophylls in leaves by reflection spectra using the random forest algorithm by E. A. Urbanovich, D. A. Afonnikov, S. V. Nikolaev

    Published 2021-03-01
    “…The article provides the analysis of the results, as well as recommendations for using this machine learning method to assess the quantitative content of chlorophylls in leaves.…”
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  19. 2559

    A Novel Convolutional Neural Network-Based Approach for Fault Classification in Photovoltaic Arrays by Farkhanda Aziz, Azhar Ul Haq, Shahzor Ahmad, Yousef Mahmoud, Marium Jalal, Usman Ali

    Published 2020-01-01
    “…An in-depth quantitative evaluation of the proposed approach is presented and compared with previous classification methods for PV array faults – both classical machine learning based and deep learning based. Unlike contemporary work, five different faulty cases (including faults in PS – on which no work has been done before in the machine learning domain) have been considered in our study, along with the incorporation of MPPT. …”
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  20. 2560

    Analysis and Recommendation of Outdoor Activities for Smart City Users Based on Real-Time Contextual Data by S. R. Mani Sekhar, D. M. Mushtaq Ahmed, G. M. Siddesh

    Published 2024-01-01
    “…This data are processed and interpreted using machine learning algorithms, which find correlations, trends, and patterns that affect outdoor activities. …”
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