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EFFICIENT MUSIC IDENTIFICATION APPROACH BASED ON LOCAL SPECTROGRAM IMAGE DESCRIPTORS

机译:基于局部谱图图像描述符的高效音乐识别方法

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The diffusion of large music collections has determined the need for algorithms enabling fast song retrieval from query audio excerpts. This is the case of online media sharing platforms that may want to detect copyrighted material. In this paper, we start from a proposed state-of-the-art algorithm for robust music matching based on spectrogram comparison leveraging computer vision concepts. We show that it is possible to further optimize this algorithm exploiting more recent image processing techniques and carrying out the analysis on limited temporal windows, still achieving accurate matching performance. The proposed solution is validated on a dataset of 800 songs, reporting an 80% decrease in computational complexity for an accuracy loss of about only 1%.
机译:大型音乐集合的扩散已确定需要从查询音频摘录中启用快速歌曲检索的算法。这是在线媒体共享平台的情况,可能想要检测到受版权保护的材料。在本文中,我们从基于频谱图比较利用计算机视觉概念的频谱图比较,从拟议的最先进的技术匹配算法开始。我们表明可以进一步优化利用更新图像处理技术的这种算法,并对有限时间窗口进行分析,仍然实现准确的匹配性能。所提出的解决方案在800首歌曲的数据集上验证,报告计算复杂性降低80%,以确保只有1%的准确性损失。

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