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Enhancing Sampling and Counting Method for Audio Retrieval with Time-Stretch Resistance

机译:具有抗时间拉伸性的增强音频检索的采样和计数方法

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An ideal audio retrieval method should be not only highly efficient in identifying an audio track from a massive audio dataset, but also robust to any distortion. Unfortunately, none of the audio retrieval methods is robust to all types of distortions. An audio retrieval method has to do with both the audio fingerprint and the strategy, especially how they are combined. We argue that the Sampling and Counting Method (SC), a state-of-the-art audio retrieval method, would be promising towards an ideal audio retrieval method, if we could make it robust to time-stretch and pitch-stretch. Towards this objective, this paper proposes a turning point alignment method to enhance SC with resistance to time-stretch, which makes Philips and Philips-like fingerprints resist to time-stretch. Experimental results show that our approach can resist to time-stretch from 70% to 130%, which is on a par to the state-of-the-art methods. It also marginally improves the retrieval performance with various noise distortions.
机译:理想的音频检索方法不仅应该在从大量音频数据集中识别音轨方面非常高效,而且还应具有对任何失真的鲁棒性。不幸的是,没有一种音频检索方法能够抵抗所有类型的失真。音频检索方法必须与音频指纹和策略有关,尤其是如何将它们组合在一起。我们认为,采样和计数方法(SC)是一种最新的音频检索方法,如果我们能够使其对时间拉伸和音高拉伸具有鲁棒性,那么它将有望朝着理想的音频检索方法发展。为了实现这一目标,本文提出了一种转折点对准方法,以增强SC的抗时延性,从而使飞利浦和类似Philips的指纹具有抗时延性。实验结果表明,我们的方法可以抵抗70%到130%的时间拉伸,这与最新方法相当。它还可以在各种噪声失真的情况下略微提高检索性能。

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