Pornographic Audios Detection Using MFCC Features and Vector Quantization

Zhiyi Qu, Jing Yu, Qiang Niu
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引用次数: 2

Abstract

Identifying the phonetic characteristics of speakers is an important branch of speech recognition. The audition system of human being is an ideal speaker recognition system. MFCC (Mel-frequency cepstral coefficients) characterizes the auditory features of humans effectively, and thus has been widely used in practice. This paper explores applying MFCC and VQ (vector quantization) algorithms on the pornographic audios detection. Firstly, MFCC of selected pornographic audios are extracted and then encoded into codebooks using VQ algorithm, Secondly, all of the codebooks obtained will be averaged to get an average codebook, Finally, the type of any newly input audio belonging to, either pornographic or non-pornographic, will be determined by measuring the Euclidean distance between the average codebook and its own codebook. Experiment results show that the algorithm can detect pornographic audios effectively.
基于MFCC特征和矢量量化的色情音频检测
识别说话人的语音特征是语音识别的一个重要分支。人的听觉系统是一种理想的说话人识别系统。Mel-frequency倒谱系数(MFCC)有效地表征了人的听觉特征,因此在实践中得到了广泛的应用。本文探讨了MFCC和矢量量化算法在色情音频检测中的应用。首先提取所选色情音频的MFCC,然后使用VQ算法将其编码成码本,然后对得到的所有码本进行平均,得到一个平均码本,最后通过测量平均码本与自身码本之间的欧氏距离来确定新输入的音频属于色情还是非色情类型。实验结果表明,该算法可以有效地检测出色情音频。
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