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首页> 外文期刊>The Journal of Experimental Biology >Sensory flow shaped by active sensing: sensorimotor strategies in electric fish
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Sensory flow shaped by active sensing: sensorimotor strategies in electric fish

机译:主动感应塑造的感觉流:电鱼的感觉运动策略

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Goal-directed behavior in most cases is composed of a sequential order of elementary motor patterns shaped by sensorimotor contingencies. The sensory information acquired thus is structured in both space and time. Here we review the role of motion during the generation of sensory flow focusing on how animals actively shape information by behavioral strategies. We use the well-studied examples of vision in insects and echolocation in bats to describe commonalities of sensory-related behavioral strategies across sensory systems, and evaluate what is currently known about comparable active sensing strategies in electroreception of electric fish. In this sensory system the sensors are dispersed across the animal's body and the carrier source emitting energy used for sensing, the electric organ, is moved while the animal moves. Thus ego-motions strongly influence sensory dynamics. We present, for the first time, data of electric flow during natural probing behavior in Gnathonemus petersii (Mormyridae),which provide evidence for this influence. These data reveal a complex interdependency between the physical input to the receptors and the animal's movements, posture and objects in its environment. Although research on spatiotemporal dynamics in electrolocation is still in its infancy, the emerging field of dynamical sensory systems analysis in electric fish is a promising approach to the study of the link between movement and acquisition of sensory information.
机译:在大多数情况下,目标导向的行为是由一系列基本的运动模式组成的,这些运动模式由感觉运动的偶发性决定。因此,所获取的感觉信息在空间和时间上都被构造。在这里,我们回顾运动在感觉流生成过程中的作用,重点是动物如何通过行为策略主动塑造信息。我们使用经过充分研究的昆虫视觉和蝙蝠回声定位示例来描述整个感官系统中与感官相关的行为策略的共性,并评估当前对电鱼电接收中可比的主动感官策略的了解。在这种感觉系统中,传感器分散在整个动物的身体上,并且在动物移动的同时,用于发射能量的载体源即电子器官也随之移动。因此,自我运动强烈影响感觉动力学。我们首次提出了Gnathonemus petersii(Mormyridae)自然探测行为期间的电流数据,这为这种影响提供了证据。这些数据揭示了受体的物理输入与动物在环境中的运动,姿势和物体之间的复杂相互依赖性。尽管关于电定位的时空动力学的研究仍处于起步阶段,但电鱼动态感官系统分析的新兴领域是研究运动与感官信息之间联系的有前途的方法。

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