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A Generic Audio Identification System for Radio Broadcast Monitoring Based on Data-Driven Segmentation

机译:基于数据驱动分割的无线电广播监控通用音频识别系统

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In this paper, a generic audio identification system is introduced to identify advertisements and songs in radio broadcast streams using automatically acquired segmental units. A new fingerprinting method based on ALISP data-driven segmentation is presented. A modified BLAST algorithm is also proposed for fast and approximate matching of ALISP sequences. To detect commercials and songs, ALISP transcriptions of references composed of large library of commercials and songs, are compared to the transcriptions of the test radio stream using Levenshtein distance. The system is described and evaluated on broadcast audio streams from 12 French radio stations. For advertisement identification, a mean precision rate of 100% with the corresponding recall value of 98% were achieved. For music identification, a mean precision rate of 100% with the corresponding recall value of 95% were achieved.
机译:在本文中,引入了一种通用音频识别系统,用于使用自动获取的分段单元来识别无线电广播流中的广告和歌曲。提出了一种基于ALISP数据驱动分割的新的指纹方法。还提出了一种改进的BLAST算法,用于ALISP序列的快速和近似匹配。为了检测商业和歌曲,将由使用Levenshtein距离的测试无线电流的大型商业和歌曲库组成的参考文献的Alisp转录。从12个法国无线电台的广播音频流描述和评估系统。对于广告识别,实现了相应召回值为98%的100%的平均精度率。对于音乐识别,实现了相应召回值为95%的100%的平均精度率。

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