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首页> 外文期刊>IEEE transactions on audio, speech and language processing >A Nonlinear Method for Stochastic Spectrum Estimation in the Modeling of Musical Sounds
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A Nonlinear Method for Stochastic Spectrum Estimation in the Modeling of Musical Sounds

机译:音乐声音建模中的随机频谱估计非线性方法

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We propose an original technique for separating the spectrum of the noisy component from that of the sinusoidal, quasi-deterministic one, for the sinusoids + transients + noise modeling of musical sounds. It also enables estimation of the time-domain noise envelope and detection of transients with standard techniques. The algorithm for spectrum separation relies on nonlinear transformations of the amplitude spectrum of the sampled signal obtained via fast Fourier transform, which allow to eliminate the dominant partials without the need for precisely tuned notch filters. The envelope estimation is performed by calculating the energy of the signal in the frequency domain, over a sliding time window. Several transformations (such as pitch shifting, time stretching, etc.) can be performed on the so-obtained stochastic spectrum prior to resynthesis. The synthesized sound is built via inverse fast Fourier transform with overlap-add method. The performance of the proposed algorithm is assessed on synthetic, instrumental, and natural sounds in terms of different quality measures
机译:我们提出了一种用于将音乐成分的正弦波+瞬变+噪声建模从正弦波,准确定性噪声中分离出来的原始技术。它还可以使用标准技术估算时域噪声包络并检测瞬变。用于频谱分离的算法依赖于通过快速傅立叶变换获得的采样信号的幅度频谱的非线性变换,从而可以消除主要部分,而无需精确调谐的陷波滤波器。通过在滑动时间窗口上计算频域中信号的能量来执行包络估计。在重新合成之前,可以对如此获得的随机频谱执行几种转换(例如音高转换,时间拉伸等)。合成的声音是通过使用重叠叠加法的快速傅里叶逆变换来建立的。拟议算法的性能是根据不同的质量指标评估合成,乐器和自然声音的性能

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