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紧致麦克风阵列压缩采样与DOA估计方法

Compressive sampling and DOA estimation method for miniature microphone array

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【作者】 王青云赵力梁瑞宇王侠孟桥

【Author】 Wang Qingyun;Zhao Li;Liang Ruiyu;Wang Xia;Meng Qiao;School of Information Science and Engineering,Southeast University;School of Communication Engineering,Nanjing Institute of Technology;

【机构】 东南大学信息科学与工程学院南京工程学院通信工程学院

【摘要】 针对紧致麦克风阵采样信号大量冗余的问题,提出了一种ΣΔAD压缩采样方法.该方法将软硬件相结合,在ΣΔAD转换器内部进行压缩采样.压缩采样中采用自适应过程,去除信号中的冗余分量,并将压缩后的信号进行稀疏编码.仿真结果表明,使用该方法对紧致麦克风阵接收信号进行压缩编码时,通过选取合适的稀疏化阈值,可使源数据的压缩比达到10%~30%.压缩采样后的信号可以用于DOA估计等应用.针对八元紧致麦克风圆阵和DSP实时系统的DOA估计实验结果表明:这种DOA估计方法在阵元间距低至2 cm时仍能正常工作;当阵列尺寸减小时,相比经典MUSIC算法和PHAT-GCC算法,该方法定位精度更高,噪声鲁棒性更强.

【Abstract】 Aiming at the problem of the redundancy of the sampled data in a compressive microphone array,a new ΣΔAD(analog-digital) compressive sampling method is proposed.Combined with software and hardware,the input signals are compressively sampled within the ΣΔAD converter.With the help of adaptive estimation procedure in sampling,the redundancy of the input signal is removed and the sparse output signal is encoded.The simulation results demonstrate that the compression rate is 10% to 30% when the proper sparseness threshold is set for the miniature microphone array during the signal coding process by this method.The compressively sampled signal can be used in the applications such as direction of arrival(DOA) estimation.The experimental results for an eight-component miniature microphone array and a real-time digital signal processing system demonstrate that when the aperture of the microphone array is low to 2 cm,the direction of the arrival is estimated successfully by this DOA estimation method.When the aperture of the array decreases,compared with the traditional multiple signal classification(MUSIC) algorithm and the phase transform generalized cross-correlation(PHAT-GCC) algorithm,the proposed DOA estimation method exhibits higher positioning accuracy and noise robustness.

【基金】 国家自然科学基金资助项目(61301219,61375028);中国博士后基金资助项目(2012M520973);江苏省自然科学基金资助项目(BK20130241);南京工程学院科研基金资助项目(ZKJ201202)
  • 【文献出处】 东南大学学报(自然科学版) ,Journal of Southeast University(Natural Science Edition) , 编辑部邮箱 ,2014年04期
  • 【分类号】TN911.23
  • 【被引频次】1
  • 【下载频次】110
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