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捕食果实的鱼类调整其快速启动动作以补偿漂移。

Fruit-catching fish tune their fast starts to compensate for drift.

作者信息

Krupczynski Philipp, Schuster Stefan

机构信息

Universität Erlangen-Nürnberg, Institut für Zoologie II, Erlangen, Germany.

出版信息

Curr Biol. 2008 Dec 23;18(24):1961-5. doi: 10.1016/j.cub.2008.10.066.

Abstract

Numerous animal navigators are not simply at the mercy of winds and currents but cope with drift to reach their goals. Here, we report how a fruit-catching Costa Rican fish combines an analysis of aerial motion with a novel way of compensating for drift to optimize its catching success. In the field, schools of this riverine fish never waited until a falling fruit actually landed in the stream. Rather, the fish responded to visual motion and started early to arrive on time at the spot where their food would land. To be successful with their early starts, the fish must cope with the strong relative drift that arises, because the fish, but not their airborne target, experience strong flow on their way toward the fruit's landing point. Surprisingly, the fish solve this problem right at the beginning-by turning rapidly and taking an initial aim that is already optimally adapted to the prevailing drift, so as to lead them straight to their food. Fruit-catching fish thus provide a stunning case of how rapidly animals can generate drift-compensating trajectories in their everyday local lives.

摘要

许多动物导航者并非仅仅受制于风和水流,而是能够应对漂移以实现其目标。在此,我们报告一种捕食果实的哥斯达黎加鱼类如何将对空中运动的分析与一种补偿漂移的新方法相结合,以优化其捕食成功率。在野外,这种生活在河流中的鱼群从不等到掉落的果实实际落入溪流中。相反,这些鱼对视觉运动做出反应,并早早开始行动,以便准时到达食物将会掉落的地点。为了通过早早开始行动而成功捕食,这些鱼必须应对出现强烈的相对漂移,因为鱼在朝着果实落点游动的过程中会受到强劲水流的影响,而它们空中的目标果实却不会。令人惊讶的是,这些鱼在一开始就解决了这个问题——通过迅速转向并采取一个已经根据当时的漂移情况进行了最优调整的初始瞄准方向,从而直接游向它们的食物。因此,捕食果实的鱼提供了一个惊人的例子,展示了动物在日常局部生活中能够多么迅速地生成补偿漂移的轨迹。

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