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Michal Stanislaw Meller
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2020 – today
- 2023
- [j19]Michal Meller, Adam Lasota:
Active Control of Highly Autocorrelated Machinery Noise in Multivariate Nonminimum Phase Systems. Circuits Syst. Signal Process. 42(3): 1501-1521 (2023) - [c22]Adam Lasota, Michal Meller:
A Simple on-Line Period Estimation for an Iterative Learning Active Noise Control Scheme. ECC 2023: 1-6 - 2022
- [j18]Michal Meller, Adam Lasota:
A Control Theoretical Approach to Spectral Factorization is Unstable. Circuits Syst. Signal Process. 41(2): 1201-1206 (2022) - 2020
- [j17]Adam Lasota, Michal Meller:
Iterative learning approach to active noise control of highly autocorrelated signals with applications to machinery noise. IET Signal Process. 14(8): 560-568 (2020) - [j16]Michal Meller, Kamil Stawiarski:
Robustified Estimators of Radar Elevation Angle Using a Specular Multipath Model. IEEE Trans. Aerosp. Electron. Syst. 56(2): 1623-1636 (2020) - [j15]Michal Meller, Kamil Stawiarski:
On DoA Estimation for Rotating Arrays Using Stochastic Maximum Likelihood Approach. IEEE Trans. Signal Process. 68: 5219-5229 (2020)
2010 – 2019
- 2019
- [j14]Maciej Niedzwiecki, Michal Meller, Damian Chojnacki:
Lattice-Filter-Based Multivariate Autoregressive Spectral Estimation With Joint Model Order and Estimation Bandwidth Adaptation. IEEE Trans. Autom. Control. 64(12): 4968-4981 (2019) - [j13]Michal Meller:
On Bayesian Tracking and Prediction of Radar Cross Section. IEEE Trans. Aerosp. Electron. Syst. 55(4): 1756-1768 (2019) - [c21]Michal Meller, Maciej Niedzwiecki, Damian Chojnacki:
On Adaptive Spectrum Estimation of Multivariate Autoregressive Locally Stationary Processes. EUSIPCO 2019: 1-5 - 2017
- [c20]Michal Meller, Maciej Niedzwiecki, Damian Chojnacki, Adam Lasota:
On autoregressive spectrum estimation using the model averaging technique. CDC 2017: 3600-3605 - [c19]Maciej Niedzwiecki, Michal Meller, Damian Chojnacki:
Lattice filter based autoregressive spectrum estimation with joint model order and estimation bandwidth adaptation. CDC 2017: 4618-4625 - 2016
- [j12]Michal Meller:
A self-optimization mechanism for generalized adaptive notch smoother. Signal Process. 129: 38-47 (2016) - 2015
- [j11]Michal Meller:
Frequency Guided Generalized Adaptive Notch Filtering - Tracking Analysis and Optimization. IEEE Trans. Signal Process. 63(22): 6003-6012 (2015) - [c18]Maciej Niedzwiecki, Michal Meller, Maciej Gajdzica:
Robust algorithm for active feedback control of narrowband noise. EUSIPCO 2015: 275-279 - [c17]Michal Meller:
Multistage generalized adaptive notch filter with improved accuracy. EUSIPCO 2015: 2671-2675 - [c16]Maciej Niedzwiecki, Michal Meller:
Active feedback noise control in the presence of impulsive disturbances. ICASSP 2015: 659-663 - 2014
- [j10]Michal Meller:
Self-tuning adaptive frequency tracker. Digit. Signal Process. 33: 71-82 (2014) - [j9]Michal Stanislaw Meller, Maciej Niedzwiecki:
Multichannel self-optimizing narrowband interference canceller. Signal Process. 98: 396-409 (2014) - [c15]Michal Meller:
Automatic optimization of adaptive notch filter's frequency tracking. EUSIPCO 2014: 431-435 - [c14]Michal Meller:
Merging extremum seeking and self-optimizing narrowband interference canceller - overdetermined case. EUSIPCO 2014: 641-645 - 2013
- [j8]Maciej Niedzwiecki, Michal Stanislaw Meller:
Generalized adaptive comb filters/smoothers and their application to the identification of quasi-periodically varying systems and signals. Autom. 49(6): 1601-1613 (2013) - [j7]Michal Stanislaw Meller, Maciej Niedzwiecki:
Parallel frequency tracking with built-in performance evaluation. Digit. Signal Process. 23(3): 845-851 (2013) - [c13]Michal Meler, Maciej Niedzwiecki:
Built in performance evaluation for an adaptive notch filter. EUSIPCO 2013: 1-5 - [c12]Maciej Niedzwiecki, Michal Stanislaw Meller, Yoshinobu Kajikawa, Dawid Lukwinski:
Estimation of nonstationary harmonic signals and its application to active control of MRI noise. ICASSP 2013: 5661-5665 - [c11]Michal Meller, Maciej Niedzwiecki:
Multiple-channel frequency-adaptive active vibration control using SONIC. ISPA 2013: 627-632 - 2012
- [j6]Michal Meller, Stanislaw Tujaka:
Processing of Noise Radar Waveforms using Block Least Mean Squares Algorithm. IEEE Trans. Aerosp. Electron. Syst. 48(1): 749-761 (2012) - [j5]Michal Stanislaw Meller:
Cheap Cancellation of Strong Echoes for Digital Passive and Noise Radars. IEEE Trans. Signal Process. 60(5): 2654-2659 (2012) - [c10]Michal Stanislaw Meller, Maciej Niedzwiecki:
Robustification of the self-optimizing narrowband interference canceler - extremum seeking in complex domain. CDC 2012: 4805-4810 - [c9]Maciej Niedzwiecki, Michal Meler:
Generalized adaptive comb filter with improved accuracy and robustness properties. EUSIPCO 2012: 91-95 - [c8]Maciej Niedzwiecki, Michal Stanislaw Meller:
Fundamental frequency smoothing for nonstationary multi-harmonic signals. ISSPA 2012: 728-733 - 2011
- [j4]Maciej Niedzwiecki, Michal Stanislaw Meller:
New Algorithms for Adaptive Notch Smoothing. IEEE Trans. Signal Process. 59(5): 2024-2037 (2011) - [c7]Maciej Niedzwiecki, Michal Stanislaw Meller:
On the instantaneous frequency smoothing for signals with quasi-linear frequency changes. ICASSP 2011: 4288-4291 - 2010
- [c6]Michal Stanislaw Meller, Maciej Niedzwiecki:
Multichannel self-optimizing active noise control scheme. CDC 2010: 54-59 - [c5]Michal Stanislaw Meller, Maciej Niedzwiecki:
An improved frequency estimator for an adaptive active noise control scheme. EUSIPCO 2010: 353-357 - [c4]Maciej Niedzwiecki, Michal Stanislaw Meller:
SONIC - Self-optimizing narrowband interference canceler: Comparison of two frequency tracking strategies. ICCA 2010: 1892-1896
2000 – 2009
- 2009
- [j3]Maciej Niedzwiecki, Michal Stanislaw Meller:
Self-Optimizing Adaptive Vibration Controller. IEEE Trans. Autom. Control. 54(9): 2087-2099 (2009) - [j2]Maciej Niedzwiecki, Michal Stanislaw Meller:
A new approach to active noise and vibration control-part I: the known frequency case. IEEE Trans. Signal Process. 57(9): 3373-3386 (2009) - [j1]Maciej Niedzwiecki, Michal Stanislaw Meller:
A new approach to active noise and vibration control-part II: the unknown frequency case. IEEE Trans. Signal Process. 57(9): 3387-3398 (2009) - [c3]Maciej Niedzwiecki, Michal Stanislaw Meller:
Self-optimizing scheme for active noise and vibration control. ICASSP 2009: 249-252 - 2008
- [c2]Maciej Niedzwiecki, Michal Stanislaw Meller:
New approach to adaptive vibration control. CDC 2008: 2581-2587 - [c1]Maciej Niedzwiecki, Michal Stanislaw Meller:
Tracking analysis of an adaptive vibration controller. CDC 2008: 2588-2593
Coauthor Index
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