【2h】

Hummingbirds control hovering flight by stabilizing visual motion

机译:蜂鸟通过稳定视觉运动来控制悬停飞行

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摘要

Relatively little is known about how sensory information is used for controlling flight in birds. A powerful method is to immerse an animal in a dynamic virtual reality environment to examine behavioral responses. Here, we investigated the role of vision during free-flight hovering in hummingbirds to determine how optic flow—image movement across the retina—is used to control body position. We filmed hummingbirds hovering in front of a projection screen with the prediction that projecting moving patterns would disrupt hovering stability but stationary patterns would allow the hummingbird to stabilize position. When hovering in the presence of moving gratings and spirals, hummingbirds lost positional stability and responded to the specific orientation of the moving visual stimulus. There was no loss of stability with stationary versions of the same stimulus patterns. When exposed to a single stimulus many times or to a weakened stimulus that combined a moving spiral with a stationary checkerboard, the response to looming motion declined. However, even minimal visual motion was sufficient to cause a loss of positional stability despite prominent stationary features. Collectively, these experiments demonstrate that hummingbirds control hovering position by stabilizing motions in their visual field. The high sensitivity and persistence of this disruptive response is surprising, given that the hummingbird brain is highly specialized for sensory processing and spatial mapping, providing other potential mechanisms for controlling position.
机译:关于如何使用感官信息控制鸟类飞行的知之甚少。一种有效的方法是将动物浸入动态虚拟现实环境中以检查行为反应。在这里,我们研究了视力在蜂鸟自由飞行悬停过程中的作用,以确定视光流(穿过视网膜的图像运动)如何用于控制身体位置。我们拍摄了在投影屏幕前盘旋的蜂鸟,并预测到投影的移动模式会破坏悬停的稳定性,而固定模式会使蜂鸟稳定位置。当在移动的光栅和螺旋线下盘旋时,蜂鸟失去了位置稳定性,并对移动的视觉刺激的特定方向做出了响应。相同刺激模式的固定版本不会失去稳定性。当多次受到单个刺激或减弱的刺激(使移动的螺旋线与固定的棋盘相结合)时,对若隐若现的运动的反应就会减弱。然而,即使有明显的静止特征,即使最小的视觉运动也足以引起位置稳定性的损失。这些实验共同证明,蜂鸟通过稳定视野中的运动来控制悬停位置。鉴于蜂鸟的大脑高度专长于感觉处理和空间映射,并提供了其他潜在的位置控制机制,因此这种破坏性反应的高灵敏度和持久性令人惊讶。

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