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本文引用的文献

1
Modeling visual-based pitch, lift and speed control strategies in hoverflies.模拟悬停虻的基于视觉的俯仰、升力和速度控制策略。
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2
Optic flow-based collision-free strategies: From insects to robots.基于光流的无碰撞策略:从昆虫到机器人。
Arthropod Struct Dev. 2017 Sep;46(5):703-717. doi: 10.1016/j.asd.2017.06.003. Epub 2017 Jul 11.
3
Mechanosensation and Adaptive Motor Control in Insects.昆虫的机械感觉与适应性运动控制
Curr Biol. 2016 Oct 24;26(20):R1022-R1038. doi: 10.1016/j.cub.2016.06.070.
4
To crash or not to crash: how do hoverflies cope with free-fall situations and weightlessness?坠落还是不坠落:食蚜蝇如何应对自由落体情况和失重状态?
J Exp Biol. 2016 Aug 15;219(Pt 16):2497-503. doi: 10.1242/jeb.141150.
5
Behavioural evidence for a visual and proprioceptive control of head roll in hoverflies (Episyrphus balteatus).食蚜蝇(Episyrphus balteatus)头部侧倾视觉和本体感受控制的行为证据。
J Exp Biol. 2015 Dec;218(Pt 23):3777-87. doi: 10.1242/jeb.127043. Epub 2015 Oct 20.
6
Flying over uneven moving terrain based on optic-flow cues without any need for reference frames or accelerometers.基于光流线索在不平坦的移动地形上飞行,无需任何参考系或加速度计。
Bioinspir Biomim. 2015 Feb 26;10(2):026003. doi: 10.1088/1748-3182/10/2/026003.
7
[Physiology of the sense of equilibrium in dragon flies in flight].[飞行中蜻蜓平衡感的生理学]
Z Vgl Physiol. 1950;32(5):421-63.
8
Head and body stabilization in blowflies walking on differently structured substrates.蝇类在不同结构基质上行走时的头部和身体稳定。
J Exp Biol. 2012 May 1;215(Pt 9):1523-32. doi: 10.1242/jeb.066910.
9
Chasing behavior and optomotor following in free-flying male blowflies: flight performance and interactions of the underlying control systems.自由飞行的雄性绿头苍蝇的追逐行为和视动跟随:飞行性能及潜在控制系统的相互作用
Front Behav Neurosci. 2010 May 14;4:20. doi: 10.3389/fnbeh.2010.00020. eCollection 2010.
10
Sensor fusion in identified visual interneurons.被识别的视觉神经元中的传感器融合。
Curr Biol. 2010 Apr 13;20(7):624-8. doi: 10.1016/j.cub.2010.01.064. Epub 2010 Mar 18.

光源位置在自由落体悬停蝇稳定性能中的作用。

Role of the light source position in freely falling hoverflies' stabilization performances.

机构信息

Aix-Marseille Université, CNRS, ISM UMR 7287, Marseille 13009, France

Aix-Marseille Université, CNRS, ISM UMR 7287, Marseille 13009, France.

出版信息

Biol Lett. 2018 May;14(5). doi: 10.1098/rsbl.2018.0051.

DOI:10.1098/rsbl.2018.0051
PMID:29794004
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6012696/
Abstract

The stabilization of plummeting hoverflies was filmed and analysed in terms of their wingbeat initiation times as well as the crash and stabilization rates. The flies experienced near-weightlessness for a period of time that depended on their ability to counteract the free fall by triggering their wingbeats. In this paradigm, hoverflies' flight stabilization strategies were investigated here for the first time under two different positions of the light source (overhead and bottom lighting). The crash rates were higher in bottom lighting conditions than with top lighting. In addition, adding a texture to the walls reduced the crash rates only in the overhead lighting condition. The position of the lighting also significantly affected both the stabilization rates and the time taken by the flies to stabilize, which decreased and increased under bottom lighting conditions, respectively, whereas textured walls increased the stabilization rates under both lighting conditions. These results support the idea that flies may mainly base their flight control strategy on visual cues and particularly that the light distribution in the visual field may provide reliable, efficient cues for estimating their orientation with respect to an allocentric reference frame. In addition, the finding that the hoverflies' optic flow-based motion detection ability is affected by the position of the light source in their visual field suggests the occurrence of interactions between movement perception and this visual vertical perception process.

摘要

悬停的蝇类的稳定状态是通过它们的翅膀拍打起始时间以及坠落和稳定速度来进行拍摄和分析的。苍蝇经历了一段时间的近乎失重状态,这取决于它们通过触发翅膀拍打来抵消自由落体的能力。在这种范式下,首次在两种不同的光源位置(头顶照明和底部照明)下研究了蝇类的飞行稳定策略。在底部照明条件下,坠落率比头顶照明条件下更高。此外,在头顶照明条件下,在墙壁上添加纹理仅降低了坠落率。照明的位置也显著影响了苍蝇的稳定速度和稳定所需的时间,在底部照明条件下,稳定速度分别降低和增加,而在两种照明条件下,纹理墙壁都增加了稳定速度。这些结果支持了苍蝇可能主要基于视觉线索来控制飞行的观点,特别是视野中的光分布可能为估计其相对于以自我为中心的参考框架的方向提供可靠、高效的线索。此外,发现蝇类基于光流的运动检测能力受到其视野中光源位置的影响,这表明运动感知与这种视觉垂直感知过程之间存在相互作用。