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基于粗谱和精细谱特征对宽吻海豚(Tursiops truncatus)生物声纳目标回波的分类。

Classification of biosonar target echoes based on coarse and fine spectral features in the bottlenose dolphin (Tursiops truncatus).

机构信息

Biologic and Bioacoustics Research, National Marine Mammal Foundation, 2240 Shelter Island Drive #200, San Diego, California 92106, USA.

U.S. Navy Marine Mammal Program, Naval Information Warfare Center Pacific Code 56710, 53560 Hull Street, San Diego, California 92152, USA.

出版信息

J Acoust Soc Am. 2020 Sep;148(3):1642. doi: 10.1121/10.0001976.

Abstract

Previous bottlenose dolphin studies suggest that the coarse envelope of an echo spectrum ("macrostructure") has hierarchical dominance over finer-scale spectral features ("microstructure") during synthetic echo discrimination tasks. In this study, two dolphins listened to and discriminated between underwater sound stimuli consisting of pairs of clicks with different micro- and macrostructures. After conditioning dolphins to reliably discriminate between two "anchor" stimuli with different micro- and macrostructures, probe stimuli, which contained a macrostructure identical to one of the anchor stimuli and the microstructure of the alternate anchor, were infrequently presented. Dolphins responded to probes in a manner consistent with macrostructure primacy.

摘要

先前的宽吻海豚研究表明,在合成回声辨别任务中,回声频谱的粗糙包络(“宏观结构”)相对于更精细的光谱特征(“微观结构”)具有层级优势。在这项研究中,两只海豚聆听并辨别了由具有不同微观结构和宏观结构的成对点击组成的水下声音刺激。在对海豚进行条件训练以可靠地区分具有不同微观结构和宏观结构的两个“锚定”刺激之后,很少出现包含与一个锚定刺激的宏观结构相同但具有另一个锚定刺激微观结构的探测刺激。海豚以与宏观结构优先性一致的方式对探测刺激做出反应。

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