4.5 Article

Automated classification of mouse pup isolation syllables: from cluster analysis to an Excel-based mouse pup syllable classification calculator

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出版社

FRONTIERS RESEARCH FOUNDATION
DOI: 10.3389/fnbeh.2012.00089

关键词

cluster analysis; mouse pup calls; vocalization; isolation calls; mouse song; communication call

资金

  1. National Institute on Deafness and Other Communication Disorders [R01 DC00937, DC00937-19S1]

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Mouse pups vocalize at high rates when they are cold or isolated from the nest. The proportions of each syllable type produced carry information about disease state and are being used as behavioral markers for the internal state of animals. Manual classifications of these vocalizations identified 10 syllable types based on their spectro-temporal features. However, manual classification of mouse syllables is time consuming and vulnerable to experimenter bias. This study uses an automated cluster analysis to identify acoustically distinct syllable types produced by CBA/CaJ mouse pups, and then compares the results to prior manual classification methods. The cluster analysis identified two syllable types, based on their frequency bands, that have continuous frequency-time structure, and two syllable types featuring abrupt frequency transitions. Although cluster analysis computed fewer syllable types than manual classification, the clusters represented well the probability distributions of the acoustic features within syllables. These probability distributions indicate that some of the manually classified syllable types are not statistically distinct. The characteristics of the four classified clusters were used to generate a Microsoft Excel-based mouse syllable classifier that rapidly categorizes syllables, with over a 90% match, into the syllable types determined by cluster analysis.

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