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本文引用的文献

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Flies land upside down on a ceiling using rapid visually mediated rotational maneuvers.苍蝇利用快速的视觉介导旋转动作,倒着落在天花板上。
Sci Adv. 2019 Oct 23;5(10):eaax1877. doi: 10.1126/sciadv.aax1877. eCollection 2019 Oct.
2
Organization enhances collective vigilance in the hovering guards of bees.组织提高了蜜蜂悬停卫士中的集体警戒性。
Behav Ecol. 2018 Sep-Oct;29(5):1105-1112. doi: 10.1093/beheco/ary086. Epub 2018 Jun 12.
3
Transition by head-on collision: mechanically mediated manoeuvres in cockroaches and small robots.正面碰撞过渡:蟑螂和小型机器人中的机械介导动作。
J R Soc Interface. 2018 Feb;15(139). doi: 10.1098/rsif.2017.0664. Epub 2018 Feb 14.
4
Wing and body kinematics measurement and force analyses of landing in fruit flies.果蝇降落时的翅膀和身体运动学测量与力分析。
Bioinspir Biomim. 2017 Dec 4;13(1):016004. doi: 10.1088/1748-3190/aa934b.
5
Bumblebees Perform Well-Controlled Landings in Dim Light.大黄蜂在昏暗光线下能进行控制良好的着陆。
Front Behav Neurosci. 2016 Sep 13;10:174. doi: 10.3389/fnbeh.2016.00174. eCollection 2016.
6
The final moments of landing in bumblebees, Bombus terrestris.熊蜂(地熊蜂)着陆的最后时刻。
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2016 Apr;202(4):277-85. doi: 10.1007/s00359-016-1073-4. Epub 2016 Feb 11.
7
Flight control and landing precision in the nocturnal bee Megalopta is robust to large changes in light intensity.夜行蜜蜂Megalopta的飞行控制和着陆精度在光照强度大幅变化时依然稳健。
Front Physiol. 2015 Oct 28;6:305. doi: 10.3389/fphys.2015.00305. eCollection 2015.
8
Appetite for self-destruction: suicidal biting as a nest defense strategy in stingless bees.自我毁灭的欲望:无刺蜂将自杀式叮咬作为巢穴防御策略
Behav Ecol Sociobiol. 2015;69(2):273-281. doi: 10.1007/s00265-014-1840-6. Epub 2014 Nov 8.
9
Transition from wing to leg forces during landing in birds.鸟类着陆过程中从翅膀力量到腿部力量的转变。
J Exp Biol. 2014 Aug 1;217(Pt 15):2659-66. doi: 10.1242/jeb.104588. Epub 2014 May 22.
10
A universal strategy for visually guided landing.一种通用的视觉引导着陆策略。
Proc Natl Acad Sci U S A. 2013 Nov 12;110(46):18686-91. doi: 10.1073/pnas.1314311110. Epub 2013 Oct 28.

无黏性蜜蜂的加速着陆及其对交通拥堵的意外好处。

Accelerated landing in a stingless bee and its unexpected benefits for traffic congestion.

机构信息

Department of Biology, Lund University, Lund 22362, Sweden.

Departamento de Ecologia, IBUSP, Universidade de São Paulo, São Paulo, Brazil.

出版信息

Proc Biol Sci. 2020 Feb 26;287(1921):20192720. doi: 10.1098/rspb.2019.2720. Epub 2020 Feb 19.

DOI:10.1098/rspb.2019.2720
PMID:32070252
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7062012/
Abstract

To land, flying animals must simultaneously reduce speed and control their path to the target. While the control of approach speed has been studied in many different animals, little is known about the effect of target size on landing, particularly for small targets that require precise trajectory control. To begin to explore this, we recorded the stingless bees landing on their natural hive entrance-a narrow wax tube built by the bees themselves. Rather than decelerating before touchdown as most animals do, accelerates in preparation for its high precision landings on the narrow tube of wax. A simulation of traffic at the hive suggests that this counterintuitive landing strategy could confer a collective advantage to the colony by minimizing the risk of mid-air collisions and thus of traffic congestion. If the simulated size of the hive entrance increases and if traffic intensity decreases relative to the measured real-world values, 'accelerated landing' ceases to provide a clear benefit, suggesting that it is only a useful strategy when target cross-section is small and landing traffic is high. We discuss this strategy in the context of ' ecology and propose that it is an adaptive behaviour that benefits foraging and nest defence.

摘要

为了着陆,飞行动物必须同时降低速度并控制它们的着陆路径。虽然已经在许多不同的动物中研究了接近速度的控制,但对于需要精确轨迹控制的小目标,对于着陆目标大小的影响知之甚少。为了开始探索这一点,我们记录了无刺蜜蜂在它们自然的蜂巢入口处降落——一个由蜜蜂自己建造的狭窄蜡管。与大多数动物在触地前减速不同,它会加速,为在狭窄的蜡管上进行高精度着陆做准备。对蜂巢交通的模拟表明,这种违反直觉的着陆策略可以通过最小化空中碰撞的风险,从而减少交通拥堵,为群体带来集体优势。如果模拟的蜂巢入口大小增加,并且相对于测量的实际值,交通强度降低,那么“加速着陆”就不再提供明显的好处,这表明只有在目标横截面较小时,并且着陆交通量较高时,它才是一种有用的策略。我们在“生态学”的背景下讨论了这种策略,并提出它是一种有益于觅食和巢防御的适应性行为。