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首页> 外文期刊>The Journal of Experimental Biology >Swimming kinematics and hydrodynamic imaging in the blind Mexican cave fish (Astyanax fasciatus).
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Swimming kinematics and hydrodynamic imaging in the blind Mexican cave fish (Astyanax fasciatus).

机译:墨西哥盲鱼(Astyanax fasciatus)的游泳运动学和水动力成像。

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Blind Mexican cave fish (Astyanax fasciatus) lack a functioning visual system, and are known to use self-generated water motion to sense their surroundings; an ability termed hydrodynamic imaging. Nearby objects distort the flow field created by the motion of the fish. These flow distortions are sensed by the mechanosensory lateral line. Here we used image processing to measure detailed kinematics, along with a new behavioural technique, to investigate the effectiveness of hydrodynamic imaging. In a head-on approach to a wall, fish reacted to avoid collision with the wall at an average distance of only 4.0+/-0.2 mm. Contrary to previous expectation, there was no significant correlation between the swimming velocity of the fish and the distance at which they reacted to the wall. Hydrodynamic imaging appeared to be most effective when the fish were gliding with their bodies held straight, with the proportion of approaches to the wall that resulted in collision increasing from 11% to 73% if the fish were beating their tails rather than gliding as they neared the wall. The swimming kinematics of the fish were significantly different when swimming beside a wall compared with when swimming away from any walls. Blind cave fish frequently touched walls when swimming alongside them, indicating that they use both tactile and hydrodynamic information in this situation. We conclude that although hydrodynamic imaging can provide effective collision avoidance, it is a short-range sense that may often be used synergistically with direct touch.
机译:墨西哥盲鱼(Astyanax fasciatus)缺少功能正常的视觉系统,并且已知会使用自发的水运动来感知周围的环境。一种称为水动力成像的能力。附近的物体使鱼的运动产生的流场变形。这些流动变形由机械感测侧线感测到。在这里,我们使用图像处理来测量详细的运动学,并使用一种新的行为技术来研究流体动力学成像的有效性。在正面接近墙壁时,鱼会做出反应以避免与墙壁碰撞,平均距离仅为4.0 +/- 0.2毫米。与先前的预期相反,鱼的游泳速度与其对壁的反应距离之间没有显着相关性。当鱼保持身体直立滑动时,水动力成像似乎是最有效的,如果鱼跳动其尾巴而不是在接近时滑动,则导致碰撞的接近壁的比例从11%增加到73%墙。与隔壁游泳相比,在隔壁游泳时鱼的游泳运动学显着不同。盲穴鱼在它们旁边游泳时经常会碰到墙壁,这表明在这种情况下它们会同时使用触觉和水动力信息。我们得出的结论是,尽管流体动力学成像可以有效地避免碰撞,但它是一种短距离感,通常可以与直接触摸协同使用。

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