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Localizing Lung Sounds: Eigen Basis Decomposition for Localizing Sources Within a Circular Array of Sensors

机译:本地化肺部声音:本征基分解用于在圆形传感器阵列中定位源

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Lung disorders or injury can result in changes in the production of lung sounds both spectrally and regionally. Localizing these lung sounds can provide information to the extent and location of the disorder. Difference in arrival times at a set of sensors and trian-gulation were previously proposed for acoustic imaging of the chest. We propose two algorithms for acoustic imaging using a set of eigen basis functions of the Helmholtz wave equation. These algorithms remove the sensor location contribution from the muiti sensor recordings using either an orthogonality property or a least squares based estimation after which a spatial minimum variance (MV) spectrum is applied to estimate the source locations. The use of these eigen basis functions allows possible extension to a lung sound model consisting of layered cylindrical media. Theoretical analysis of the relationship of resolution to frequency and noise power was derived and simulations verified the results obtained. Further, a Nyquist's criteria for localizing sources within a circular array shows that the radius of region where sources can be localized is inversely proportional to the frequency of sound.The resolution analysis and modified Nyquist criteria can be used for determining the number of sensors required at a given noise level, for a required resolution, frequency range, and radius of region for which sources need to be localized.
机译:肺部疾病或损伤会导致频谱和区域的肺音产生变化。定位这些肺音可以提供有关疾病程度和位置的信息。先前提出了一组传感器到达时间的差异和三角调节,以用于胸部的声学成像。我们提出了两种使用Helmholtz波动方程的本征基函数的声学成像算法。这些算法使用正交性或基于最小二乘法的估计从muiti传感器记录中删除传感器位置的贡献,然后使用空间最小方差(MV)频谱估计源位置。这些本征基函数的使用允许可能扩展到由分层圆柱介质组成的肺部声音模型。从理论上分析了分辨率与频率和噪声功率之间的关系,并通过仿真验证了所得结果。此外,奈奎斯特准则在圆形阵列中定位声源表明,可以定位声源的区域半径与声音频率成反比。分辨率分析和修改后的奈奎斯特准则可用于确定在以下位置所需的传感器数量对于给定的噪声水平,需要所需的分辨率,频率范围和需要定位源的区域半径。

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