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Channel-compensated low-level features for speaker recognition

机译:通道补偿的低级功能,用于说话人识别

摘要

A system for generating channel-compensated features of a speech signal includes a channel noise simulator that degrades the speech signal, a feed forward convolutional neural network (CNN) that generates channel-compensated features of the degraded speech signal, and a loss function that computes a difference between the channel-compensated features and handcrafted features for the same raw speech signal. Each loss result may be used to update connection weights of the CNN until a predetermined threshold loss is satisfied, and the CNN may be used as a front-end for a deep neural network (DNN) for speaker recognition/verification. The DNN may include convolutional layers, a bottleneck features layer, multiple fully-connected layers and an output layer. The bottleneck features may be used to update connection weights of the convolutional layers, and dropout may be applied to the convolutional layers.
机译:用于生成语音信号的通道补偿特征的系统包括:使语音信号降级的通道噪声模拟器,生成降级语音信号的通道补偿特征的前馈卷积神经网络(CNN),以及计算同一原始语音信号的通道补偿特征和手工特征之间的差异。每个损失结果可以用于更新CNN的连接权重,直到满足预定的阈值损失为止,并且CNN可以用作深度神经网络(DNN)的前端,用于说话人识别/验证。 DNN可以包括卷积层,瓶颈特征层,多个完全连接的层和输出层。瓶颈特征可以用于更新卷积层的连接权重,并且可以将丢弃应用于卷积层。

著录项

  • 公开/公告号AU2017327003B2

    专利类型

  • 公开/公告日2019-05-23

    原文格式PDF

  • 申请/专利权人 PINDROP SECURITY INC.;

    申请/专利号AU20170327003

  • 发明设计人 KHOURY ELIE;GARLAND MATTHEW;

    申请日2017-09-19

  • 分类号G10L17/04;G10L17/18;G10L17/20;G10L17/02;

  • 国家 AU

  • 入库时间 2022-08-21 11:56:15

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