Suchergebnisse - Computer Learning AND Pattern Recognition::Uncertainty Management

  1. 1

    Deep Stereo Using Adaptive Thin Volume Representation With Uncertainty Awareness von Cheng, Shuo, Xu, Zexiang, Zhu, Shilin, Li, Zhuwen, Li, Li Erran, Ramamoorthi, Ravi, Su, Hao

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2020
    “… We present Uncertainty-aware Cascaded Stereo Network (UCS-Net) for 3D reconstruction from multiple RGB images. Multi-view stereo (MVS …”
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  2. 2

    Rainbow Memory: Continual Learning with a Memory of Diverse Samples von Bang, Jihwan, Kim, Heesu, Yoo, YoungJoon, Ha, Jung-Woo, Choi, Jonghyun

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2021
    “… To enhance the sample diversity in the memory, we propose a novel memory management strategy based on per-sample classification uncertainty and data augmentation, named Rainbow Memory (RM …”
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  3. 3

    Geometric Anchor Correspondence Mining with Uncertainty Modeling for Universal Domain Adaptation von Chen, Liang, Lou, Yihang, He, Jianzhong, Bai, Tao, Deng, Minghua

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2022
    “… Therefore, in this paper, we propose a Geometric anchor-guided Adversarial and conTrastive learning framework with uncErtainty modeling called GATE to alleviate these issues …”
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  4. 4

    Parameter-free Online Test-time Adaptation von Boudiaf, Malik, Mueller, Romain, Ayed, Ismail Ben, Bertinetto, Luca

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2022
    “… Training state-of-the-art vision models has become prohibitively expensive for researchers and practitioners. For the sake of accessibility and resource reuse, …”
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  5. 5

    Handling the impact of feature uncertainties on SVM: A robust approach based on Sobol sensitivity analysis von Zouhri, Wahb, Homri, Lazhar, Dantan, Jean-Yves

    ISSN: 0957-4174, 1873-6793
    Veröffentlicht: New York Elsevier Ltd 01.03.2022
    Veröffentlicht in Expert systems with applications (01.03.2022)
    “… SVM is a supervised machine learning method for pattern recognition whose performance depends on the definition of its hyperparameters and the quality of data …”
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  6. 6

    Exploring Data Aggregation in Policy Learning for Vision-Based Urban Autonomous Driving von Prakash, Aditya, Behl, Aseem, Ohn-Bar, Eshed, Chitta, Kashyap, Geiger, Andreas

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.01.2020
    “… Data aggregation techniques can significantly improve vision-based policy learning within a training environment, e.g …”
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  7. 7

    Emerging artificial intelligence methods in structural engineering von Salehi, Hadi, Burgueño, Rigoberto

    ISSN: 0141-0296, 1873-7323
    Veröffentlicht: Kidlington Elsevier Ltd 15.09.2018
    Veröffentlicht in Engineering structures (15.09.2018)
    “… •The methods of pattern recognition, machine learning, and deep learning are studied.•The advantages of employing novel AI methods in structural engineering are discussed …”
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  8. 8

    Transfer Knowledge from Head to Tail: Uncertainty Calibration under Long-tailed Distribution von Chen, Jiahao, Su, Bing

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2023
    “… How to estimate the uncertainty of a given model is a crucial problem. Current calibration techniques treat different classes equally and thus implicitly assume …”
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  9. 9

    Geometry and Uncertainty-Aware 3D Point Cloud Class-Incremental Semantic Segmentation von Yang, Yuwei, Hayat, Munawar, Jin, Zhao, Ren, Chao, Lei, Yinjie

    ISSN: 1063-6919
    Veröffentlicht: IEEE 01.06.2023
    “… Despite the significant recent progress made on 3D point cloud semantic segmentation, the current methods require training data for all classes at once, and …”
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  10. 10

    Conformal deep forest for uncertainty-aware classification von Zhang, Jing, Qiu, Yunfei, Dong, Libo

    ISSN: 1319-1578, 2213-1248, 1319-1578
    Veröffentlicht: Cham Springer International Publishing 01.08.2025
    “… Uncertainty in deep learning models significantly impacts their performance, robustness, and reliability, making explicit uncertainty quantification a critical research focus …”
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  11. 11

    Source-Free Progressive Graph Learning for Open-Set Domain Adaptation von Luo, Yadan, Wang, Zijian, Chen, Zhuoxiao, Huang, Zi, Baktashmotlagh, Mahsa

    ISSN: 0162-8828, 1939-3539, 2160-9292, 1939-3539
    Veröffentlicht: United States IEEE 01.09.2023
    “… , and failure to accurately estimate model predictions' uncertainty. To address these limitations, the Progressive Graph Learning (PGL …”
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  12. 12

    Energy management strategy for battery/supercapacitor hybrid electric city bus based on driving pattern recognition von Shi, Junzhe, Xu, Bin, Shen, Yimin, Wu, Jingbo

    ISSN: 0360-5442, 1873-6785
    Veröffentlicht: Oxford Elsevier Ltd 15.03.2022
    Veröffentlicht in Energy (Oxford) (15.03.2022)
    “… During the online operation, the proposed EMS executes the designed driving pattern recognition algorithm with V2C assistance to select optimal control rules …”
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  13. 13

    Improving Fishing Pattern Detection from Satellite AIS Using Data Mining and Machine Learning von de Souza, Erico N., Boerder, Kristina, Matwin, Stan, Worm, Boris

    ISSN: 1932-6203, 1932-6203
    Veröffentlicht: United States Public Library of Science 01.07.2016
    Veröffentlicht in PloS one (01.07.2016)
    “… While coastal fisheries in national waters are closely monitored in some countries, existing maps of fishing effort elsewhere are fraught with uncertainty, especially in remote areas and the High Seas …”
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  14. 14

    A novel algorithmic approach to model uncertainties associated with sustainable supply chain management using complex spherical fuzzy soft settings von Asghar, Ali, Khan, Khuram Ali, Rahman, Atiqe Ur, El-Morsy, Salwa

    ISSN: 2511-2104, 2511-2112
    Veröffentlicht: Singapore Springer Nature Singapore 01.06.2025
    “… This study introduces the complex spherical fuzzy soft set (CSFSS), a sophisticated framework that deals with supplier selection uncertainties …”
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  15. 15

    Uncertainty quantification in automated valuation models with spatially weighted conformal prediction von Hjort, Anders, Hermansen, Gudmund Horn, Pensar, Johan, Williams, Jonathan P.

    ISSN: 2364-415X, 2364-4168
    Veröffentlicht: Cham Springer International Publishing 01.12.2025
    Veröffentlicht in International journal of data science and analytics (01.12.2025)
    “… Nonparametric machine learning models, such as random forests and gradient boosted trees, are frequently used to estimate house prices due to their predictive accuracy, but a main drawback …”
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    Guidance for good practice in the application of machine learning in development of toxicological quantitative structure-activity relationships (QSARs) von Belfield, Samuel J., Cronin, Mark T.D., Enoch, Steven J., Firman, James W.

    ISSN: 1932-6203, 1932-6203
    Veröffentlicht: United States Public Library of Science 10.05.2023
    Veröffentlicht in PloS one (10.05.2023)
    “… On account of the pattern-recognition capabilities of the underlying methods, the statistical power …”
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  17. 17

    Active cluster annotation for wafer map pattern classification in semiconductor manufacturing von Shim, Jaewoong, Kang, Seokho, Cho, Sungzoon

    ISSN: 0957-4174, 1873-6793
    Veröffentlicht: New York Elsevier Ltd 30.11.2021
    Veröffentlicht in Expert systems with applications (30.11.2021)
    “… •Active cluster annotation is proposed for wafer map pattern classification.•High-performance CNN is achieved with reduced annotation cost …”
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  18. 18

    Data Uncertainty (DU)-Former: An Episodic Memory Electroencephalography Classification Model for Pre- and Post-Training Assessment von Wan, Xianglong, Liu, Zheyuan, Yao, Yiduo, Wan Hasan, Wan Zuha, Liu, Tiange, Duan, Dingna, Xie, Xueguang, Wen, Dong

    ISSN: 2306-5354, 2306-5354
    Veröffentlicht: Switzerland MDPI AG 30.03.2025
    Veröffentlicht in Bioengineering (Basel) (30.03.2025)
    “… Episodic memory training plays a crucial role in cognitive enhancement, particularly in addressing age-related memory decline and cognitive disorders …”
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  19. 19

    Review of machine learning and WEAP models for water allocation under climate change von Hirko, Deme Betele, Du Plessis, Jakobus Andries, Bosman, Adele

    ISSN: 1865-0473, 1865-0481
    Veröffentlicht: Berlin/Heidelberg Springer Berlin Heidelberg 01.03.2025
    Veröffentlicht in Earth science informatics (01.03.2025)
    “… It demonstrates how ML enhances WEAP’s capabilities by improving forecasting accuracy, recognising hydrological patterns, and reducing measurement uncertainties …”
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  20. 20

    Bayesian Deep Learning for Spatial Interpolation in the Presence of Auxiliary Information von Kirkwood, Charlie, Economou, Theo, Pugeault, Nicolas, Odbert, Henry

    ISSN: 1874-8961, 1874-8953
    Veröffentlicht: Berlin/Heidelberg Springer Berlin Heidelberg 01.04.2022
    Veröffentlicht in Mathematical geosciences (01.04.2022)
    “… Here, we demonstrate the power of feature learning in a geostatistical context by showing how deep neural networks can automatically learn the complex high-order patterns by which point …”
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