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Echo interval and not echo intensity drives bat flight behavior in structured corridors

机译:回声间隔,而不是回波强度驱动器在结构走廊中的蝙蝠飞行行为

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To navigate in the natural environment, animals must adapt their locomotion in response to environmental stimuli. The echolocating bat relies on auditory processing of echo returns to represent its surroundings. Recent studies have shown that echo flow patterns influence bat navigation, but the acoustic basis for flight path selection remains unknown. To investigate this problem, we released bats in a flight corridor with walls constructed of adjacent individual wooden poles, which returned cascades of echoes to the flying bat. We manipulated the spacing and echo strength of the poles comprising each corridor side, and predicted that bats would adapt their flight paths to deviate toward the corridor side returning weaker echo cascades. Our results show that the bat's trajectory through the corridor was not affected by the intensity of echo cascades. Instead, bats deviated toward the corridor wall with more sparsely spaced, highly reflective poles, suggesting that pole spacing, rather than echo intensity, influenced bat flight path selection. This result motivated investigation of the neural processing of echo cascades. We measured local evoked auditory responses in the bat inferior colliculus to echo playback recordings from corridor walls constructed of sparsely and densely spaced poles. We predicted that evoked neural responses would be discretely modulated by temporally distinct echoes recorded from the sparsely spaced pole corridor wall, but not by echoes from the more densely spaced corridor wall. The data confirm this prediction and suggest that the bat's temporal resolution of echo cascades may drive its flight behavior in the corridor.
机译:为了在自然环境中导航,动物必须根据环境刺激调整他们的运动。谐波蝙蝠依赖回声返回的听觉处理来表示其周围环境。最近的研究表明,回波流动模式影响蝙蝠导航,但飞行路径选择的声学基础仍然未知。为了调查这个问题,我们在飞行走廊中释放了篮球,墙壁由相邻的单独木杆建造,这将级联回声返回到飞行蝙蝠。我们操纵包括每个走廊侧的杆的间距和回声强度,并预测蝙蝠将使其飞行路径适应偏离走廊侧返回较弱的回声级联。我们的研究结果表明,蝙蝠通过走廊的轨迹不受回声级联强度的影响。相反,蝙蝠偏离走廊墙,具有更加稀疏的间隔,高度反射杆,表明极间距,而不是回波强度,影响了蝙蝠飞行路径选择。该结果有动力研究回声级联的神经处理。我们测量了局部诱发的蝙蝠劣质小池中的听觉反应,以回应由稀疏和密集间隔杆构造的走廊壁的回放录制。我们预测,诱发的神经响应将由从稀疏间隔的极走廊墙上记录的时间上独特的回声来分离调制,但不是由更密集间隔的走廊壁的回波。数据确认了这一预测,并表明BAT的回声级联的时间分辨率可能会在走廊中驱动其飞行行为。

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