首页> 外国专利> Audio source separation based on flexible pre-trained probabilistic source models

Audio source separation based on flexible pre-trained probabilistic source models

机译:基于灵活的预训练概率源模型的音频源分离

摘要

Improved audio source separation is provided by providing an audio dictionary for each source to be separated. Thus the invention can be regarded as providing “partially blind” source separation as opposed to the more commonly considered “blind” source separation problem, where no prior information about the sources is given. The audio dictionaries are probabilistic source models, and can be derived from training data from the sources to be separated, or from similar sources. Thus a library of audio dictionaries can be developed to aid in source separation. An unmixing and deconvolutive transformation can be inferred by maximum likelihood (ML) given the received signals and the selected audio dictionaries as input to the ML calculation. Optionally, frequency-domain filtering of the separated signal estimates can be performed prior to reconstructing the time-domain separated signal estimates. Such filtering can be regarded as providing an “audio skin” for a recovered signal.
机译:通过为每个要分离的源提供音频词典,可以提供改进的音频源分离。因此,本发明可以被视为提供“部分盲”源分离,这与更普遍认为的“盲”源分离问题相反,后者没有给出关于源的先验信息。音频词典是概率源模型,可以从要分离的源或相似源的训练数据中得出。因此,可以开发音频词典库以帮助进行源分离。给定接收信号和所选音频字典作为ML计算的输入,可以通过最大似然(ML)来推断解混合和解卷积变换。可选地,可以在重构时域分离信号估计之前执行分离信号估计的频域滤波。这样的滤波可以被认为为恢复的信号提供了“音频皮肤”。

著录项

  • 公开/公告号US2007154033A1

    专利类型

  • 公开/公告日2007-07-05

    原文格式PDF

  • 申请/专利权人 HAGAI THOMAS ATTIAS;

    申请/专利号US20060607473

  • 发明设计人 HAGAI THOMAS ATTIAS;

    申请日2006-12-01

  • 分类号H04B15/00;G06F15/00;H03F1/26;

  • 国家 US

  • 入库时间 2022-08-21 21:03:18

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