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>A Background Noise Reduction Technique Using Adaptive Noise Cancellation for Microphone Arrays
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A Background Noise Reduction Technique Using Adaptive Noise Cancellation for Microphone Arrays
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机译:使用自适应降噪技术的麦克风阵列背景降噪技术
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摘要
Background noise in wind tunnel environments poses a challenge to acoustic measurements due to possible low or negative Signal to Noise Ratios (SNRs) present in the testing environment. This paper overviews the application of time domain Adaptive Noise Cancellation (ANC) to microphone array signals with an intended application of background noise reduction in wind tunnels. An experiment was conducted to simulate background noise from a wind tunnel circuit measured by an out-of-flow microphone array in the tunnel test section. A reference microphone was used to acquire a background noise signal which interfered with the desired primary noise source signal at the array. The technique s efficacy was investigated using frequency spectra from the array microphones, array beamforming of the point source region, and subsequent deconvolution using the Deconvolution Approach for the Mapping of Acoustic Sources (DAMAS) algorithm. Comparisons were made with the conventional techniques for improving SNR of spectral and Cross-Spectral Matrix subtraction. The method was seen to recover the primary signal level in SNRs as low as -29 dB and outperform the conventional methods. A second processing approach using the center array microphone as the noise reference was investigated for more general applicability of the ANC technique. It outperformed the conventional methods at the -29 dB SNR but yielded less accurate results when coherence over the array dropped. This approach could possibly improve conventional testing methodology but must be investigated further under more realistic testing conditions.
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机译:风洞环境中的背景噪声对声学测量提出了挑战,因为测试环境中可能存在低或负的信噪比(SNR)。本文概述了时域自适应噪声消除(ANC)在麦克风阵列信号上的应用,以及在风洞中降低背景噪声的预期应用。进行了一个实验,以模拟风洞电路的背景噪声,该风洞电路是由隧道测试部分中的流出麦克风阵列测得的。使用参考麦克风来获取背景噪声信号,该信号会干扰阵列中所需的主要噪声源信号。使用来自阵列麦克风的频谱,点源区域的阵列波束形成以及随后使用去卷积方法(用于声源映射)(DAMAS)算法进行去卷积,研究了该技术的功效。与改善频谱和互谱矩阵减法的SNR的常规技术进行了比较。可以看出,该方法可将SNR中的主要信号电平恢复到-29 dB,并优于传统方法。为了使ANC技术更通用,研究了使用中心阵列麦克风作为噪声参考的第二种处理方法。在-29 dB SNR时,它的性能优于传统方法,但当阵列上的相干性下降时,结果的准确性就会降低。这种方法可能会改善常规测试方法,但必须在更实际的测试条件下进行进一步研究。
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