Search Results - expectation–maximization algorithm (EM-algorithm)

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  1. 1

    An Asymmetric Distribution with Heavy Tails and Its ExpectationMaximization (EM) Algorithm Implementation by Olmos, Neveka M., Venegas, Osvaldo, Gómez, Yolanda M., Iriarte, Yuri A.

    ISSN: 2073-8994, 2073-8994
    Published: Basel MDPI AG 01.09.2019
    Published in Symmetry (Basel) (01.09.2019)
    “… We developed the expectationmaximization algorithm and present a simulation study. We calculated the moment and maximum likelihood estimators and present three…”
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    Journal Article
  2. 2

    Dynamic Probabilistic Predictable Feature Analysis for Multivariate Temporal Process Monitoring by Fan, Wei, Zhu, Qinqin, Ren, Shaojun, Zhang, Liang, Si, Fengqi

    ISSN: 1063-6536, 1558-0865
    Published: New York IEEE 01.11.2022
    “… The model parameters are estimated with an efficient expectation-maximization algorithm, where the genetic algorithm and the Kalman filter are designed and incorporated…”
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  3. 3

    Identification of Slow-Rate Integrated Measurement Systems Using Expectation-Maximization Algorithm by Kheirandish, Amid, Fatehi, Alireza, Gheibi, Mir Sajjad

    ISSN: 0018-9456, 1557-9662
    Published: New York IEEE 01.12.2020
    “… By selecting finite impulse response (FIR) and autoregressive exogenous (ARX) models for the systems, parameters of them will be accurately estimated in the framework of the expectation-maximization (EM) algorithm…”
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  4. 4
  5. 5

    A Block EM Algorithm for Multivariate Skew Normal and Skew t -Mixture Models by Lee, Sharon X., Leemaqz, Kaleb L., McLachlan, Geoffrey J.

    ISSN: 2162-237X, 2162-2388
    Published: IEEE 01.11.2018
    “… However, parameter estimation via the Expectation-Maximization (EM) algorithm can become very time consuming due to the complicated expressions involved in the E-step that are numerically expensive to evaluate…”
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  6. 6

    Offline and Online Parameter Learning for Switching Multirate Processes With Varying Delays and Integrated Measurements by Salehi, Yousef, Huang, Biao

    ISSN: 0278-0046, 1557-9948
    Published: New York IEEE 01.07.2022
    “… varying sampling intervals. First, under the framework of the expectation-maximization (EM) algorithm, offline parameter estimation problem of dual-rate switching augmented regression models is handled…”
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  7. 7

    Degradation Modeling Using Stochastic Processes With Random Initial Degradation by Shen, Lijuan, Wang, Yudong, Zhai, Qingqing, Tang, Yincai

    ISSN: 0018-9529, 1558-1721
    Published: New York IEEE 01.12.2019
    Published in IEEE transactions on reliability (01.12.2019)
    “…In degradation tests, it is common to see that the initial degradation levels of test units are heterogeneous. Moreover, the degradation rate of a path may…”
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  8. 8

    ANFIS-EM approach for PET brain image reconstruction by Thiyagarajan, Arunprasath, Murugan, Pallikonda Rajasekaran, Subramanian, Kannan

    ISSN: 0899-9457, 1098-1098
    Published: New York Blackwell Publishing Ltd 01.03.2015
    “… expectation maximization algorithm (ANFIS‐EM). This expectation maximization (EM) algorithm provides better image quality when compared with other traditional methodologies…”
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  9. 9

    A Generalized Model for Robust Tensor Factorization With Noise Modeling by Mixture of Gaussians by Chen, Xi'ai, Han, Zhi, Wang, Yao, Zhao, Qian, Meng, Deyu, Lin, Lin, Tang, Yandong

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Published: United States IEEE 01.11.2018
    “…The low-rank tensor factorization (LRTF) technique has received increasing attention in many computer vision applications. Compared with the traditional matrix…”
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  10. 10

    Robust Identification of Nonlinear Systems With Missing Observations: The Case of State-Space Model Structure by Yang, Xianqiang, Liu, Xin, Yin, Shen

    ISSN: 1551-3203, 1941-0050
    Published: Piscataway IEEE 01.05.2019
    “…This paper investigates the robust identification of nonlinear systems in state-space setting with output measurements contaminated with outliers and part of…”
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  11. 11

    Indirect/Direct Learning Coverage Control for Wireless Sensor and Mobile Robot Networks by Liu, Yen-Chen, Lin, Tsen-Chang, Lin, Mu-Tai

    ISSN: 1063-6536, 1558-0865
    Published: New York IEEE 01.01.2022
    “… To improve the density function estimation, this study employs an expectation-maximization algorithm and log-likelihood, which maximizes the similarity between the proposed normalized density…”
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  12. 12

    The spike‐and‐slab quantile LASSO for robust variable selection in cancer genomics studies by Liu, Yuwen, Ren, Jie, Ma, Shuangge, Wu, Cen

    ISSN: 0277-6715, 1097-0258, 1097-0258
    Published: Hoboken, USA John Wiley & Sons, Inc 20.11.2024
    Published in Statistics in medicine (20.11.2024)
    “…Data irregularity in cancer genomics studies has been widely observed in the form of outliers and heavy‐tailed distributions in the complex traits. In the past…”
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  13. 13

    Robust SCN for Data-Driven Modeling Based on Heavy-Tailed Noise Distribution by Liu, Xin, Liu, Xiaoqing, Dai, Wei

    ISSN: 0018-9456, 1557-9662
    Published: New York IEEE 2025
    “… with the stochastic configuration algorithm, which means the hidden nodes number, the input weights, and biases of the SCN learner model…”
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  14. 14

    A Theoretical Framework for Change Detection Based on a Compound Multiclass Statistical Model of the Difference Image by Zanetti, Massimo, Bruzzone, Lorenzo

    ISSN: 0196-2892, 1558-0644
    Published: New York IEEE 01.02.2018
    “…The change detection (CD) problem is very important in the remote sensing domain. The advent of a new generation of multispectral (MS) sensors has given rise…”
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  15. 15

    A Novel Robust Gaussian Approximate Smoother Based on EM for Cooperative Localization With Sensor Fault and Outliers by Xu, Bo, Guo, Yu, Wang, Lianzhao, Zhang, Jiao

    ISSN: 0018-9456, 1557-9662
    Published: New York IEEE 2021
    “…In this article, a novel robust Gaussian approximation smoother based on expectation-maximization (EM…”
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  16. 16

    Adaptive Radar Detection in the Presence of Missing-data by Aubry, Augusto, Carotenuto, Vincenzo, De Maio, Antonio, Rosamilia, Massimo, Marano, Stefano

    ISSN: 0018-9251, 1557-9603
    Published: New York IEEE 01.08.2022
    “…This article deals with the problem of adaptive radar detection in a missing-data context, where the complete observations (i.e., downstream information loss…”
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  17. 17

    Variable-Bit-Rate Video Frame-Size Prediction by the Extended Kalman Filter Using Levenberg-Marquardt Algorithm by Chang, Shih Yu, Wu, Hsiao-Chun, Yan, Kun

    ISSN: 0018-9316, 1557-9611
    Published: New York IEEE 01.03.2023
    Published in IEEE transactions on broadcasting (01.03.2023)
    “… (in the absence of uncertainty) which is surely not realistic in practice. In this work, we propose a new expectation-maximization (EM…”
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  18. 18

    penalized EM algorithm incorporating missing data mechanism for Gaussian parameter estimation by Chen, Lin S, Prentice, Ross L, Wang, Pei

    ISSN: 0006-341X, 1541-0420, 1541-0420
    Published: United States Blackwell Publishers 01.06.2014
    Published in Biometrics (01.06.2014)
    “… The performance of the resulting “penalized EM algorithm incorporating missing data mechanism (PEMM)” estimation procedure is evaluated in simulation studies and in a proteomic data illustration…”
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  19. 19

    Robust Degradation Analysis With Non-Gaussian Measurement Errors by Zhai, Qingqing, Ye, Zhi-Sheng

    ISSN: 0018-9456, 1557-9662
    Published: New York IEEE 01.11.2017
    “…Degradation analysis is an effective way to infer the health status and lifetime of products. Due to variability in the measurement, degradation observations…”
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  20. 20

    A Competing Risks Model With Multiply Censored Reliability Data Under Multivariate Weibull Distributions by Fan, Tsai-Hung, Wang, Yi-Fu, Ju, She-Kai

    ISSN: 0018-9529, 1558-1721
    Published: New York IEEE 01.06.2019
    Published in IEEE transactions on reliability (01.06.2019)
    “…A competing risks model is composed of more than one failure mode that naturally arises when reliability systems are made of two or more components. A series…”
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