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Adaptive Controllers for Multichannel Feedforward Control And Their Application to the Active Control of Ship Interior Noise

机译:用于多通道前馈控制的自适应控制器及其在船舶内部噪声的主动控制中的应用

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Various structural measures against vibration and noise were taken in a training ship, Oshima Maru. However, an unpleasant sound persisted in the mess hall, where crews take their breaks. In order to reduce the noise, active controllers were investigated. Some of them were preconditioned using the inverse of the plant because their convergence rates are limited by the dynamics and coupling within the plant response. The algorithms were compared under the same conditions to investigate differences in their properties and also corrected to satisfy the causality of their update processes. Simulations for a control system were introduced using plant responses measured from a loudspeaker to a microphone in the mess hall inside Oshima Maru. After investigating the convergence speed in various gradient descent adaptation algorithms, the results were integrated with the actual plant response and applied to the active control of ship interior noise. It was also shown that the although preconditioned LMS algorithm converges dramatically faster than the ordinary gradient descent adaptation algorithms with an accurate plant model, its convergence rate is still sensitive to the autocorrelation and cross-correlation properties of the reference signals.
机译:对振动和噪声的各种结构性措施采取了一个训练舰,大岛丸。然而,一个不愉快的声音坚持在食堂,在那里船员采取他们的休息。为了降低噪音,主动控制器进行了调查。他们中有些人用植物的倒数,因为他们的收敛速度是由动力的限制和工厂响应中耦合预处理。该算法在相同条件下进行比较,调查其特性差异和校正也以满足他们的更新过程的因果关系。用于控制系统的仿真,使用从扬声器测量在大岛丸内的食堂麦克风植物反应引入的。调查各种梯度下降自适应算法的收敛速度后,将结果与实际工厂响应集成并施加到船舶内部噪声的主动控制。它也表明,尽管预调节LMS算法收敛显着快于一个准确的工厂模型普通梯度下降自适应算法,其收敛速度是静止的参考信号的自相关和互相关属性的敏感。

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