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A 3D acoustic temperature field reconstruction algorithm using adaptive regularization parameter

机译:使用自适应正则化参数的3D声温度场重建算法

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Acoustic temperature field reconstruction is an illposed problem. This means especially that their solution is unstable under data perturbations. Numerical methods that can cope with this problem are the so-called regularization methods. The choice of a regularization parameter has an important influence on reconstruction accuracy. In this paper, a 3D acoustic temperature field reconstruction algorithm is proposed. It uses a new criterion for choosing the regularization parameter, which makes a good compromise between de-noise and detail reconstruction of the temperature field. Reconstructions of a single-peak temperature field by using simulated travel-times corrupted with different level noises demonstrate that the new algorithm has high reconstruction accuracy and good anti-noise ability.
机译:声温度场重建是一个暗示的问题。这尤其是在数据扰动下的解决方案不稳定。可以应对此问题的数值方法是所谓的正则化方法。正则化参数的选择对重建准确性具有重要影响。本文提出了一种三维声温度场重建算法。它使用新的标准来选择正则化参数,这在温度场的脱噪和细节重建之间进行了良好的折衷。通过使用不同级别噪声损坏的模拟行进时间来重建单峰值温度场的重建证明了新算法具有高的重建精度和良好的抗噪声能力。

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