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Automatic detection of known advertisements in radio broadcast with data-driven ALISP transcriptions

机译:通过数据驱动的ALISP转录自动检测广播中的已知广告

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This paper describes an audio indexing system to search for known advertisements in radio broadcast streams, using automatically acquired segmental units. These segmental units called ALISP units are acquired automatically using temporal decomposition and vector quantization and modeled by Hidden Markov Models (HMMs). To detect commercials, ALISP transcriptions of reference advertisements are compared to those of radio stream using the Leven-shtein distance. The system is described and evaluated using broadcast streams provided by YACAST. On a set of 802 advertisements we achieve a mean precision of 95% with the corresponding recall value of 97%. The results show that the system is robust in situations where the advertisement to detect is stretched or suffer from time distortions. Moreover, this system allowed us to detect some annotation errors.
机译:本文介绍了一种音频索引系统,它使用自动获取的分段单元来搜索广播流中的已知广告。这些称为ALISP单位的分段单位是使用时间分解和矢量量化自动获取的,并通过隐马尔可夫模型(HMM)进行建模。为了检测广告,使用Leven-shtein距离将参考广告的ALISP转录与广播广告的转录进行比较。使用YACAST提供的广播流来描述和评估该系统。在一组802个广告上,我们达到95%的平均精度,而相应的召回值则为97%。结果表明,该系统在要检测的广告被拉伸或出现时间失真的情况下具有鲁棒性。此外,该系统使我们能够检测到一些注释错误。

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