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Channel Robust Feature Transformation Based on Filter-Bank Energy Filtering

机译:基于滤波器组能量滤波的信道鲁棒特征变换

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摘要

This correspondence proposes a novel feature transform for channel robustness with short utterances. In contrast to well-known techniques based on feature trajectory filtering, the presented procedure aims to reduce the time-varying component of channel distortion by applying a bandpass filter along the Mel frequency domain on a frame-by-frame basis. By doing so, the channel cancelling effect due to conventional feature trajectory filtering methods is enhanced. The filtering parameters are defined by employing a novel version of relative importance analysis based on a discriminant function. Experiments with telephone speech on a text-dependent speaker verification task show that the proposed scheme can lead to reductions of 8.6% in equal error rate when compared with the baseline system. Also, when applied in combination with cepstral mean normalization and RASTA, the presented technique leads to further reductions of 9.7% and 4.3% in equal error rate, respectively, when compared with those methods isolated.
机译:这种对应关系提出了一种新颖的特征转换,用于短话语的信道鲁棒性。与基于特征轨迹滤波的众所周知的技术相比,本文提出的过程旨在通过在逐帧的基础上沿梅尔频域应用带通滤波器来减少信道失真的时变分量。通过这样做,增强了由于传统特征轨迹滤波方法引起的信道消除效果。通过使用基于判别函数的相对重要性分析的新版本来定义过滤参数。在与文本相关的说话人验证任务上进行电话语音的实验表明,与基线系统相比,该方案可将等错误率降低8.6%。同样,与倒谱平均归一化和RASTA结合使用时,与孤立的那些方法相比,所提出的技术可以分别使相等错误率分别降低9.7%和4.3%。

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