Stabilization and Variations to the Adaptive Local Iterative Filtering Algorithm: the Fast Resampled Iterative Filtering Method
Giovanni Barbarino, Antonio Cicone

TL;DR
This paper introduces two new algorithms, Stable Adaptive Local Iterative Filtering and Resampled Iterative Filtering, which guarantee convergence for non-stationary signal decomposition, improving stability and computational efficiency.
Contribution
The paper proposes two novel algorithms that ensure a priori convergence of adaptive filtering techniques for non-stationary signals, with one stabilizing the process and the other accelerating calculations.
Findings
Stable Adaptive Local Iterative Filtering is always convergent.
Resampled Iterative Filtering guarantees convergence for any signal.
Resampled Iterative Filtering can be significantly accelerated computationally.
Abstract
Non-stationary signals are ubiquitous in real life. Many techniques have been proposed in the last decades which allow decomposing multi-component signals into simple oscillatory mono-components, like the groundbreaking Empirical Mode Decomposition technique and the Iterative Filtering method. When a signal contains mono-components that have rapid varying instantaneous frequencies, we can think, for instance, to chirps or whistles, it becomes particularly hard for most techniques to properly factor out these components. The Adaptive Local Iterative Filtering technique has recently gained interest in many applied fields of research for being able to deal with non-stationary signals presenting amplitude and frequency modulation. In this work, we address the open question of how to guarantee a priori convergence of this technique, and propose two new algorithms. The first method, called…
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Taxonomy
TopicsMachine Fault Diagnosis Techniques · Blind Source Separation Techniques · Advanced Adaptive Filtering Techniques
