Ros Ivo G, Biewener Andrew A
Department of Organismic and Evolutionary Biology, Harvard University, Cambridge, MA, United States.
Division of Biology and Bioengineering, California Institute of Technology, Pasadena, CA, United States.
Front Neurosci. 2017 Dec 1;11:655. doi: 10.3389/fnins.2017.00655. eCollection 2017.
Similar flight control principles operate across insect and vertebrate fliers. These principles indicate that robust solutions have evolved to meet complex behavioral challenges. Following from studies of visual and cervical feedback control of flight in insects, we investigate the role of head stabilization in providing feedback cues for controlling turning flight in pigeons. Based on previous observations that the eyes of pigeons remain at relatively fixed orientations within the head during flight, we test potential sensory control inputs derived from head and body movements during 90° aerial turns. We observe that periods of angular head stabilization alternate with rapid head repositioning movements (head saccades), and confirm that control of head motion is decoupled from aerodynamic and inertial forces acting on the bird's continuously rotating body during turning flapping flight. Visual cues inferred from head saccades correlate with changes in flight trajectory; whereas the magnitude of neck bending predicts angular changes in body position. The control of head motion to stabilize a pigeon's gaze may therefore facilitate extraction of important motion cues, in addition to offering mechanisms for controlling body and wing movements. Strong similarities between the sensory flight control of birds and insects may also inspire novel designs of robust controllers for human-engineered autonomous aerial vehicles.
类似的飞行控制原理在昆虫和脊椎动物飞行者中都适用。这些原理表明,已经进化出了强大的解决方案来应对复杂的行为挑战。基于对昆虫飞行视觉和颈部反馈控制的研究,我们研究了头部稳定在为控制鸽子转弯飞行提供反馈线索方面的作用。基于之前的观察,即鸽子在飞行过程中眼睛在头部内保持相对固定的方向,我们测试了在90°空中转弯过程中来自头部和身体运动的潜在感觉控制输入。我们观察到,头部角度稳定期与快速的头部重新定位运动(头部扫视)交替出现,并证实了在转弯扑翼飞行过程中,头部运动的控制与作用在鸟类不断旋转身体上的空气动力和惯性力是解耦的。从头部扫视推断出的视觉线索与飞行轨迹的变化相关;而颈部弯曲的幅度预测身体位置的角度变化。因此,控制头部运动以稳定鸽子的视线,除了提供控制身体和翅膀运动的机制外,还可能有助于提取重要的运动线索。鸟类和昆虫的感觉飞行控制之间的强烈相似性也可能激发人类工程自主飞行器强大控制器的新颖设计。