首页> 外国专利> MULTI-TYPE ACOUSTIC FEATURE INTEGRATION METHOD AND SYSTEM BASED ON DEEP NEURAL NETWORKS

MULTI-TYPE ACOUSTIC FEATURE INTEGRATION METHOD AND SYSTEM BASED ON DEEP NEURAL NETWORKS

机译:基于深神经网络的多型声学特征集成方法与系统

摘要

The application discloses a multi-type acoustic feature integration method and system based on deep neural networks. The method and system include using labeled speech data set to train and build a multi-type acoustic feature integration model based on deep neural networks, to determine or update the network parameters of the multi-type acoustic feature integration model; the method and system includes inputting the multiple types of acoustic features extracted from the testing speech into the trained multi-type acoustic feature integration model, and extracting the deep integrated feature vectors in frame level or segment level. The solution supports the integrated feature extraction for multiple types of acoustic features in different kinds of speech tasks, such as speech recognition, speech wake-up, spoken language recognition, speaker recognition, and anti-spoofing etc. It encourages the deep neural networks to explore internal correlation between multiple types of acoustic features according to practical speech tasks, to improve the recognition accuracy and stability of speech applications.
机译:该应用公开了一种基于深神经网络的多型声学特征集成方法和系统。该方法和系统包括使用标记的语音数据集基于深神经网络训练和构建多型声学特征集成模型,以确定或更新多型声学功能集成模型的网络参数;该方法和系统包括将从测试语音中提取的多种类型的声学特征输入到训练的多型声学特征集成模型中,并在帧级别或段级别中提取深度集成特征向量。该解决方案支持在不同类型的语音任务中的多种声学特征的集成特征提取,例如语音识别,语音唤醒,语言识别,扬声器识别和反欺骗等。它鼓励深度神经网络根据实用语音任务探讨多种声学特征之间的内部相关性,提高语音应用的识别精度和稳定性。

著录项

  • 公开/公告号US2021233511A1

    专利类型

  • 公开/公告日2021-07-29

    原文格式PDF

  • 申请/专利权人 XIAMEN UNIVERSITY;

    申请/专利号US202117154801

  • 发明设计人 LIN LI;ZHENG LI;QINGYANG HONG;

    申请日2021-01-21

  • 分类号G10L15/02;G10L15/06;G10L15/16;G10L15/22;G10L15/01;G06N3/08;G06N3/04;

  • 国家 US

  • 入库时间 2022-08-24 20:13:46

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