Active Noise Control Based on Reinforcement Learning

Publish Year: 1392
نوع سند: مقاله کنفرانسی
زبان: English
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ISAV03_039

تاریخ نمایه سازی: 29 تیر 1393

Abstract:

Active Noise Control (ANC) systems are used in order to reduce the sound noise level by generating anti-noise signals. M-Estimators are widely used in ANC systems in purpose of updating the adaptive FIR filter taps used as systems controller. Up to now evaluation of M-Estimators capabilities show that there exists a need for further improvements. In this paper, Reinforcement Learning (RL) methods are used to generate the controller output. The sensitivity of the constant parameter in RL method is checked. The effectiveness of proposed method is proven by comparing the results with the previous studies. Simulations show the fast initial convergence of the proposed algorithm.

Authors

Amir Hoseini Sabzevari

Department of Mechanical Engineering, University of Ferdowsi, Azadi Sq, P.O.

Majid Moavenian

Department of Mechanical Engineering, University of Ferdowsi, Azadi Sq, P.O

Mohammad-Bagher Naghibi Sistani

Department of Electrical Engineering, University of Ferdowsi, Azadi Sq, P.O.