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Published on: November 12, 2019
A novel adaptive time delay identification technique.
Alper Bayrak1, Enver Tatlicioglu2
1Department of Electrical & Electronics Engineering, Bolu Abant Izzet Baysal University, Gölköy Kampüsü, 14030, Bolu, Turkiye.
This study introduces a new adaptive method for identifying time delays in signals, crucial for signal processing and communication systems. The method accurately estimates uncertain delays, even with noise, ensuring system stability.
Area of Science:
- Signal Processing
- Communication Systems
- Adaptive Systems
Background:
- Accurate time delay estimation is critical in signal processing and communication systems.
- Uncertainty in time delays can degrade system performance.
- Existing methods may struggle with dynamic or noisy environments.
Purpose of the Study:
- To propose a novel online adaptive method for identifying time delays.
- To ensure the stability and robustness of the proposed identification algorithm.
- To evaluate the method's performance in various delay scenarios and noise conditions.
Main Methods:
- Development of a nonlinear adaptive update law based on a filtered prediction error term.
- Utilizing Lyapunov-based tools to analyze the algorithm's stability.
- Conducting numerical simulations to validate the identification accuracy.
Main Results:
- The proposed method successfully identifies constant, slowly varying, and suddenly changing time delays.
- The identification algorithm is proven to be globally uniformly ultimately bounded, ensuring stability.
- Effective performance is demonstrated even in the presence of additive noise.
Conclusions:
- The novel online adaptive time delay identification method is effective and robust.
- The method offers a reliable solution for applications requiring accurate time delay estimation.
- The proven stability guarantees reliable performance in dynamic and noisy signal environments.
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