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首页> 外文期刊>Bioacoustics: The International Journal of Animal Sound and its Recording >Identifying individual wild Eastern grey wolves (Canis lupus lycaon) using fundamental frequency and amplitude of howls
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Identifying individual wild Eastern grey wolves (Canis lupus lycaon) using fundamental frequency and amplitude of howls

机译:使用基本频率和of声振幅识别野生野生灰狼(Canis lupus lycaon)

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The use of amplitudes to identify individuals has historically been ignored by bioacoustic researchers due to problems of attenuation. However, recent studies have shown that amplitudes encode identity in a variety of mammal species. Previously, individuality has been demonstrated in both fundamental frequency (F0) and amplitude changes of captive Eastern wolf (Canis lupus lycaon) howls with 100% accuracy where attenuation of amplitude due to distance was controlled in a captive environment. In this study, we aim to determine whether both fundamental frequency and amplitude data collected from vocalizations of wild wolves recorded over unknown distances, in variable conditions and with different recording equipment, can still encode identity. We used a bespoke code, developed in Matlab, to extract simple scalar variables from 67 high-quality solo howls from 10 wild individuals and 112 chorus howls from another 109 individuals, including lower quality howls with wind or water noise. Principal component analysis (PCA) was carried out on the fundamental frequency and normalized amplitude of harmonic 1, yielding histogram-derived PCA values on which discriminant function analysis was applied. An accuracy of 100% was achieved when assigning solo howls to individuals, and for the chorus howls a best accuracy of 97.4% was achieved. We suggest that individual recognition using our new extraction and analysis methods involving fundamental frequency and amplitudes together can identify wild wolves with high accuracy, and that this method should be applied to surveys of individuals in capture – mark – recapture and presence – absence studies of canid species.
机译:由于衰减的问题,生物声学研究人员一直忽略使用幅度来识别个体。但是,最近的研究表明,振幅编码多种哺乳动物物种的身份。以前,已经在被囚禁的东部狼(Canis lupus lycaon)how叫的基本频率(F0)和幅度变化中证明了个性,其中100%的精度在受约束的环境中控制了由于距离引起的幅度衰减。在这项研究中,我们旨在确定从可变距离和不同录音设备中以未知距离记录的野狼发声收集的基频和振幅数据是否仍可以编码身份。我们使用在Matlab中开发的定制代码从10个野生个体的67个高质量单声how叫中提取简单标量变量,并从另外109个个体中提取112个合唱声,其中包括带有风或水噪声的低质量的ls叫。对谐波1的基频和归一化振幅进行主成分分析(PCA),得出直方图派生的PCA值,并应用判别函数分析。将单独的how叫声分配给个人时,精度达到100%;对于合唱how叫声,则达到97.4%的最佳精度。我们建议,使用我们新的提取和分析方法(涉及基频和幅度)来进行个体识别可以高精度地识别野狼,并且该方法应应用于对犬科动物的捕获-标记-捕获和存在-缺失研究中种类。

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