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Sound fields clusterization via neural networks

机译:通过神经网络进行声场聚类

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Paper presents application of a recently proposed approach for multidimensional data clustering to data received from a microphone array antenna. The accumulated sound pressure at each point (a microphone in the array) is used to create “sound picture” of the observed by the microphone antenna area. Features for classification are extracted using overlapping receptive fields based on the model of direction selective cells in the middle temporal (MT) cortex. Next the clustering procedure using Echo state network and subtractive clustering algorithm is applied to separate receptive fields in proper number of classes. The obtained results are compared with the sonograms created by the original software of the producer of microphone array.
机译:论文介绍了最近提出的多维数据聚类方法在从麦克风阵列天线接收的数据中的应用。每个点(阵列中的麦克风)的累积声压用于创建麦克风天线区域所观察到的“声像”。基于中间颞叶(MT)皮质中方向选择细胞的模型,使用重叠的接受场提取分类特征。接下来,将使用回声状态网络和减法聚类算法的聚类过程应用于以适当数量的类分离接收域。将获得的结果与麦克风阵列生产商的原始软件创建的超声图进行比较。

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