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Maximum-likelihood based 3D acoustical signature estimation

机译:基于最大可能性的3D声学签名估计

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An audio recording, made in a real environment, carries an acoustical signature which changes according to the acoustical characteristics of the environment and the recording positions. This signature which is similar to a 3D room impulse response contains the directions, levels and arrival times of the direct source and reflections. Although it is easy to obtain reverberant recordings by convolving clean recordings with the acoustical signature, estimating the signature from any recording is a difficult inverse problem. Acoustical signature estimation is important in acoustical analysis, audio forensics for authentication, room size and shape estimation and improving speech intelligibility by dereverberation. In this work, the statistical modelling of intensity vector directions, which are obtained from compact microphone array recordings is made. Obtained statistical distribution is used for reducing the reverberation based on the maximum-likelihood estimation method. This dereverberated sound enables deconvolving the reverberant recordings to estimate the acoustical signature.
机译:在真实环境中进行的音频记录携带声学签名,其根据环境的声学特性和记录位置而改变。类似于3D室脉冲响应的签名包含直接源和反射的方向,级别和到达时间。虽然通过使用声学签名卷积清洁录制,但易于获得混响录制,估计从任何录音的签名是一个困难的反问题。声学签名估计在声学分析中是重要的,用于认证的音频取证,房间大小和形状估计,并通过DERERATION提高语音可懂度。在这项工作中,制造从紧凑型麦克风阵列记录获得的强度矢量方向的统计建模。获得的统计分布用于基于最大似然估计方法来降低混响。这种放松的声音使解构混响记录能够估计声学签名。

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