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Electric field maps and boundary element simulations of electrolocation in weakly electric fish.

机译:弱电鱼中电定位的电场图和边界元模拟。

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摘要

Weakly electric fish use electroreception--the generation and detection of electric currents--to explore the world around them. Neurophysiological studies of these fish have greatly increased our understanding of central electrosensory processing, and have significant implications for sensory processing in the cerebellum and cerebellar-like neural structures.;This thesis addresses a particular deficiency in our understanding of electrosensory systems: the input pattern of currents stimulating the fish's electroreceptors has not yet been well defined. My goals were to quantitatively reconstruct the electric organ discharge (EOD) and electrosensory images detected by weakly electric fish. These were accomplished by mapping the EODs of six gymnotiform species, simulating the EODs in two (Eigenmannia and Apteronotus), and predicting the electrosensory input during exploratory behaviors.;The EOD maps display a wide diversity of species-specific patterns, implying significant differences in field generation, sensory input patterns, possible behavioral strategies, and processing algorithms. Each fish must interpret electrosensory images which are highly dependent upon its own particular EOD pattern.;To study electrolocation noninvasively during natural behaviors, I developed a 3-d electric fish simulator based on the boundary element method. The simulator solves Poisson's equation for the electric potential in and around the fish, modeled as an electrostatic boundary value problem. Models of two species were built and optimized to match the measured maps. By varying only a few parameters, I explored how the electric organ structure and activation generate a particular EOD pattern: Eigenmannia has a synchronous electric organ and dipolar EOD, while Apteronotus is better described as a propagating multipole.;The simulator was used to reconstruct the EOD during a previously published tail-probing behavior of Eigenmannia, and from my own videotapes of Apteronotus exploring objects under infrared light. Simulations of selected exploratory behaviors revealed the EOD fields, modulations from body orientation and objects, and the resulting electrosensory patterns. The results (1) imply the fish control their body positions to regulate particular features of the electrosensory image, (2) predict features of the electrosensory input reaching the brain, and (3) suggest algorithms needed to extract useful signals from the electrosensory stream.
机译:弱电鱼利用电接收-电流的产生和检测-探索周围的世界。对这些鱼的神经生理学研究极大地增进了我们对中央电感觉过程的理解,并对小脑和小脑样神经结构的感觉过程产生了重要的意义。本论文解决了我们对电感觉系统的理解的一个特殊缺陷:刺激鱼的电感受器的电流尚未得到很好的定义。我的目标是定量重建弱电鱼检测到的电器官放电(EOD)和电感应图像。这些是通过绘制6个裸露齿形物种的EOD值,模拟两种(Eigenmannia和Apteronotus)的EOD并预测探索行为期间的电感应输入来实现的; EOD图显示了多种物种特有的模式,这暗示着物种之间的显着差异场生成,感觉输入模式,可能的行为策略和处理算法。每条鱼都必须解释高度依赖于其自身特定EOD模式的电感应图像。为了研究自然行为期间的无创电定位,我开发了一种基于边界元方法的3-d电鱼模拟器。模拟器可将鱼体内和周围的电位解泊松方程,并建模为静电边界值问题。建立并优化了两个物种的模型以匹配测得的图。通过仅改变几个参数,我探索了电器官的结构和激活如何产生特定的EOD模式:本征躁狂症具有同步的电器官和偶极EOD,而Apteronotus可以更好地描述为传播的多极子。在先前发表的本征狂人的尾巴探测行为期间,以及从我自己的录像带录入的Apteronotus录像带中进行的EOD探测都是在红外光下进行的。所选探索行为的仿真显示了EOD场,来自身体方向和物体的调制以及由此产生的电感应模式。结果(1)暗示鱼类控制其身体位置以调节电感应图像的特定特征,(2)预测到达大脑的电感应输入的特征,并且(3)建议从电感应流中提取有用信号所需的算法。

著录项

  • 作者

    Assad, Christopher.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Biology Neuroscience.;Biology Animal Physiology.;Engineering Electronics and Electrical.;Biophysics General.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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