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APPLICATION OF SPEECH RECOGNITION TO AFRICAN ELEPHANT (LOXODONTA AFRICANA) VOCALIZATIONS

机译:语音识别对非洲大象(Loxodonta Africana)发声的应用

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This paper presents a novel application of speech processing research, classification of African elephant vocalizations. Speaker identification and call classification experiments are performed on data collected from captive African elephants in a naturalistic environment. The features used for classification are 12 Mel-Frequency Cepstral Coefficients plus log energy computed using a shifted filter bank to emphasize the infrasound range of the frequency spectrum used by African elephants. Initial classification accuracies of 83.8% for call classification and 88.1% for speaker identification were obtained. The long-term goal of this research is to develop a universal analysis framework and robust feature set for animal vocalizations that can be applied to many species.
机译:本文提出了一种新颖的语音处理研究,非洲大象发声分类。扬声器识别和呼叫分类实验是关于从俘虏非洲大象在自然环境中收集的数据进行的。用于分类的特征是12个熔体频率谱系齐系数加上使用移位滤波器组计算的日志能量,以强调非洲大象使用的频谱的基础频量范围。呼叫分类的初始分类准确性为83.8%,并获得了扬声器识别的88.1%。本研究的长期目标是开发用于可以应用于许多物种的动物发声的普遍分析框架和强大的功能。

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