arXiv:2607.11059eess.AS2026-07中稿 · publication in Aco…

用特定排列麦克风对,实现宽频声强精准测量。

Acoustic intensity estimation using cardioid microphone pairs in tight-frame configurations

论文配图:Acoustic intensity estimation using cardioid microphone pairs in tight-frame configurations
图 1 · 摘自论文原文
  • 通过多轴麦克风阵列几何平均,降低方向性误差影响。
  • 大间距麦克风仍可实现高精度声强估计,突破传统限制。
  • 提出泄漏度量指标,直观评估麦克风性能缺陷。

本文研究基于心形指向麦克风对的声强估计方法(C-C法)。与传统压力差技术不同,该方法对麦克风间距与声波长的关系不敏感。但实际麦克风不可避免存在理想心形指向偏差,导致方向依赖的估计误差。为此,提出基于球面紧框架麦克风配置的测量框架:沿多轴测量方向性声强分量,并重构三维声强矢量。利用勒让德多项式与球谐函数展开表示指向误差,引入依赖于几何结构的泄漏度量,量化不同排列对误差的抑制能力。理论分析与数值仿真表明,紧框架配置可通过几何平均有效抑制方向性误差。所提泄漏度量能定性反映麦克风指向缺陷对重建声强的影响。结果进一步表明,即使采用相对较大的麦克风间距,仍可实现准确的宽频声强估计,这在传统压力差方法中通常不可行。该框架提供了物理可解释且实用的定向麦克风阵列声强测量方案。

原文摘要 · Abstract (English)

This paper investigates acoustic intensity estimation using pairs of cardioid microphones based on the cardioid-cardioid (C-C) method. Unlike conventional pressure-difference techniques, the C-C method is intrinsically less sensitive to the relationship between microphone spacing and acoustic wavelength. However, practical microphones inevitably deviate from ideal cardioid directivity, producing direction-dependent estimation errors. To improve robustness against such errors, a measurement framework based on spherical tight-frame microphone configurations is proposed. Directional intensity components measured along multiple axes are combined to reconstruct the three-dimensional acoustic intensity vector. Furthermore, directivity errors are represented using Legendre polynomial and spherical harmonic expansions, and a geometry-dependent leakage metric is introduced to quantify the error-suppression capability of different microphone arrangements. Theoretical analysis and numerical simulations demonstrate that tight-frame configurations effectively suppress direction-dependent errors through geometric averaging. The proposed leakage metric provides a qualitative indication of microphone directivity imperfections on the reconstructed intensity vector. The results further indicate that accurate wide-band acoustic-intensity estimation can be achieved even with relatively large microphone spacings, which are generally impractical in conventional pressure-difference approaches. The proposed framework provides a physically interpretable and practically useful approach for acoustic intensity measurement using directional microphone arrays.

声学测量麦克风阵列声强估计

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