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Audio Similarity Measure Based on Renyi’s Quadratic Entropy

机译:基于仁义二次熵的音频相似性度量

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Considering noise interference often exists in audio processing, it is not robust enough to calculate audio similarity by using distance measure directly. In this paper, basing on Renyi’s quadratic entropy,a novel scheme for audio similarity measure is proposed. In our work, we extract Mel Frequency Cepstral Coefficients (MFCCs) to represent each audio, and then calculate the similarity based on the entropy of audio samples by probability density function (pdf) of MFCCs which can be estimated by Parzen window. The experimental results show that: (a) our approach has better performance than the one based on Euclidean distance in the common SNR condition, (b) our approach can achieve 94.00% matching accuracy even when the signal to noise ratio (SNR) is 0db. In addition, our algorithm also can be applied in audio retrieval and musical cluster.
机译:考虑到音频处理中经常存在噪声干扰,因此直接使用距离测量来计算音频相似度还不够鲁棒。本文在仁义二次熵的基础上,提出了一种音频相似度度量的新方案。在我们的工作中,我们提取梅尔频率倒谱系数(MFCC)来表示每种音频,然后通过MFCC的概率密度函数(pdf)根据音频样本的熵计算相似度,该概率密度函数可以通过Parzen窗口估算。实验结果表明:(a)我们的方法在普通SNR条件下比基于欧几里得距离的方法具有更好的性能;(b)即使在信噪比(SNR)为0db的情况下,我们的方法也可以达到94.00%的匹配精度。此外,我们的算法还可以应用于音频检索和音乐聚类。

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