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BIRD SONG RECOGNITION BASED ON SYLLABLE PAIR HISTOGRAMS

机译:基于音节对直方图的鸟歌识

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Bird song can be divided into a sequence of syllabic elements. In this paper we investigate the possibility of bird species recognition based on the syllable pair histogram of the song. This representation compresses the variable-length syllable sequence into a fixed-dimensional feature vector. The histogram is computed by means of Gaussian syllable prototypes which are automatically found given the song data and the dissimilarity measure of syllables. Our representation captures the use of the syllable alphabet and also some temporal structure of the song. We demonstrate the method in bird species recognition with song patterns obtained from fifty individuals belonging to four common passerine bird species.
机译:鸟歌可以分为一系列音节元素。在本文中,我们根据歌曲音节对直方图的基础鸟类识别的可能性。该表示将可变长度音节序列压缩成固定维度特征向量。通过Gaussian音节原型来计算直方图,该原型会在给定歌曲数据和音节的不相似度量时自动找到。我们的表示捕获了音节字母的使用以及歌曲的一些时间结构。我们展示了鸟类识别的方法,歌曲模式从属于四个常见的雀野鸟类的五十个体获得。

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