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Bio-Inspired Sparse Representation of Speech and Audio Using Psychoacoustic Adaptive Matching Pursuit

机译:使用心理声学适应性匹配追求的生物启发言论和音频的稀疏表示

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Current paper devoted to the sparse audio and speech signal mod-elling via the matching pursuit (MP) algorithm. Redundant dictionary of the time-frequency functions is constructed through the frame-based psychoacoustic optimized wavelet packet (WP) transform. Anthropomorphic adaptation of the time-frequency plan allows minimizing perceptual redundancy of the signal modelling. Psychoacoustic information at MP stage for the best atom selection from the dictionary is used. It improves algorithm performance in terms of human hearing system and computational complexity. Described signal model can be applied in many audio and speech processing tasks such as source separation, watermarking, classification and so on. Presented research focused on the signal encoding. Universal audio/speech coding algorithm that is suitable for the input signals with different sound content is proposed.
机译:目前纸张专用于稀疏音频和语音信号的模型,通过匹配追求(MP)算法。通过基于帧的心理声学优化小波包(WP)变换构成时频函数的冗余词典。时间频率计划的拟人适应允许最小化信号建模的感知冗余。使用来自字典的最佳原子选择的MP阶段的心理信息。它在人类听力系统和计算复杂性方面提高了算法性能。描述的信号模型可以应用于许多音频和语音处理任务,例如源分离,水印,分类等。提出的研究专注于信号编码。提出了适用于具有不同声音内容的输入信号的通用音频/语音编码算法。

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