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Electric imaging through active electrolocation: implication for the analysis of complex scenes

机译:通过主动电定位进行电成像:对复杂场景的分析意义

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摘要

The electric sense of mormyrids is often regarded as an adaptation to conditions unfavourable for vision and in these fish it has become the dominant sense for active orientation and communication tasks. With this sense, fish can detect and distinguish the electrical properties of the close environment, measure distance, perceive the 3-D shape of objects and discriminate objects according to distance or size and shape, irrespective of conductivity, thus showing a degree of abstraction regarding the interpretation of sensory stimuli. The physical properties of images projected on the sensory surface by the fish’s own discharge reveal a “Mexican hat” opposing centre-surround profile. It is likely that computation of the image amplitude to slope ratio is used to measure distance, while peak width and slope give measures of shape and contrast. Modelling has been used to explore how the images of multiple objects superimpose in a complex manner. While electric images are by nature distributed, or ‘blurred” behavioural strategies orienting sensory surfaces and the neural architecture of sensory processing networks both contribute to resolving potential ambiguities. Rostral amplification is produced by current funnelling in the head and chin appendage regions, where high density electroreceptor distributions constitute foveal regions. Central magnification of electroreceptive pathways from these regions particularly favours the detection of capacitive properties intrinsic to potential living prey. Swimming movements alter the amplitude and contrast of pre-receptor object-images but image modulation is normalised by central gain-control mechanisms that maintain excitatory and inhibitory balance, removing the contrast-ambiguity introduced by self-motion in much the same way that contrast gain-control is achieved in vision.
机译:害虫的电感通常被认为是对视力不利条件的适应,在这些鱼类中,它已成为主动定向和交流任务的主要感官。从这个意义上讲,鱼类可以检测并区分周围环境的电学特性,测量距离,感知物体的3D形状,并根据距离,大小和形状来区分物体,而与电导率无关,从而显示出关于物体的抽象程度感觉刺激的解释。鱼类自身排出的图像投射到感觉表面的物理特性揭示出与中心周围轮廓相反的“墨西哥帽”。图像幅度与斜率之比的计算可能用于测量距离,而峰宽和斜率则提供形状和对比度的量度。建模已用于探索如何以复杂的方式叠加多个对象的图像。虽然电子图像本质上是分布式的,或者是定向感觉表面的“模糊”行为策略以及感觉处理网络的神经体系结构都有助于解决潜在的歧义。鼻部放大是通过电流在头和下巴附肢区域漏斗而产生的,其中高密度电感受器分布构成了中央凹区域。来自这些区域的电感受路径的中央放大尤其有利于潜在潜伏猎物固有的电容特性的检测。游泳运动改变了受体前物体图像的幅度和对比度,但是图像调制通过保持增益平衡的中央增益控制机制进行归一化,消除了自我运动引入的对比度模糊,其方式与对比度增益基本相同-在视觉上实现控制。

著录项

  • 来源
    《Biological Cybernetics》 |2008年第6期|519-539|共21页
  • 作者单位

    Neuroethology and Sensory Ecology Institute of Zoology University of Bonn Endenicher Allee 11-13 43115 Bonn Germany;

    UNIC CNRS 1 Avenue de la Terrasse 91190 Gif-sur Yvette France;

    Neuroethology and Sensory Ecology Institute of Zoology University of Bonn Endenicher Allee 11-13 43115 Bonn Germany;

    Neuroethology and Sensory Ecology Institute of Zoology University of Bonn Endenicher Allee 11-13 43115 Bonn Germany;

    Neuroethology and Sensory Ecology Institute of Zoology University of Bonn Endenicher Allee 11-13 43115 Bonn Germany;

    Departamento de Neurociencias Integrativas y Computacionales Universidad de la República Av. Italia 3318 11600 Montevideo Uruguay;

    Seccion Biomatematicas Facultad de Ciencias Universidad de la República Iguá 4225 11400 Montevideo Uruguay;

    Departamento de Neurociencias Integrativas y Computacionales Universidad de la República Av. Italia 3318 11600 Montevideo Uruguay;

    UNIC CNRS 1 Avenue de la Terrasse 91190 Gif-sur Yvette France;

    Neuroethology and Sensory Ecology Institute of Zoology University of Bonn Endenicher Allee 11-13 43115 Bonn Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Electrolocation; Electric images; Receptive fields; Sensory imaging; Modelling; Sensory magnification;

    机译:电定位;电图像;接受场;感觉成像;建模;感觉放大率;

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