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Vespertilionid bats control the width of their biosonar sound beam dynamically during prey pursuit

机译:捕兽蛛蝙蝠在猎物追捕过程中动态地控制其生物声波声束的宽度

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摘要

Animals using sound for communication emit directional signals, focusing most acoustic energy in one direction. Echolocating bats are listening for soft echoes from insects. Therefore, a directional biosonar sound beam greatly increases detection probability in the forward direction and decreases off-axis echoes. However, high directionality has context-specific disadvantages: at close range the detection space will be vastly reduced, making a broad beam favorable. Hence, a flexible system would be very advantageous. We investigated whether bats can dynamically change directionality of their biosonar during aerial pursuit of insects. We trained five Myotis daubentonii and one Eptesicus serotinus to capture tethered mealworms and recorded their echolocation signals with a multimicrophone array. The results show that the bats broaden the echolocation beam drastically in the terminal phase of prey pursuit. M. daubentonii increased the half-amplitude angle from approximately 40° to approximately 90° horizontally and from approximately 45° to more than 90° vertically. The increase in beam width is achieved by lowering the frequency by roughly one octave from approximately 55 kHz to approximately 27.5 kHz. The E. serotinus showed beam broadening remarkably similar to that of M. daubentonii. Our results demonstrate dynamic control of beam width in both species. Hence, we propose directionality as an explanation for the frequency decrease observed in the buzz of aerial hawking vespertilionid bats. We predict that future studies will reveal dynamic control of beam width in a broad range of acoustically communicating animals.
机译:使用声音进行交流的动物会发出定向信号,将大多数声能集中在一个方向上。装有蝙蝠的蝙蝠正在听昆虫发出的回声。因此,定向生物声波声束大大增加了向前方向的检测概率,并减少了离轴回波。但是,高方向性具有特定于上下文的缺点:在近距离处,检测空间将大大减小,从而使宽光束变得有利。因此,灵活的系统将是非常有利的。我们调查了蝙蝠在空中追捕昆虫时是否可以动态改变其生物声纳的方向性。我们训练了五只Myotis daubentonii和一只Eptesicus serotinus来捕获束缚的粉虫,并用多麦克风阵列记录了它们的回声定位信号。结果表明,蝙蝠在捕食末期显着扩大了回声定位束。 daubentonii菌的半振幅角从水平方向的大约40°增加到大约90°,在垂直方向上的角度从大约45°增加到超过90°。波束宽度的增加是通过将频率从大约55 kHz降低大约1个八度来实现的。血清埃希氏菌显示出束增宽,与道氏莫拉氏菌非常相似。我们的结果证明了两种物种中束宽度的动态控制。因此,我们提出方向性的解释,以解释在空中小贩vespertilionid蝙蝠的嗡嗡声中观察到的频率下降。我们预测,未来的研究将揭示动态控制动物声束宽度的动态控制。

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