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Discrimination of complex form by simple oscillator networks

机译:通过简单的振荡器网络区分复杂形式

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摘要

Natural images are rich in higher order spatial correlations. Brain scanning, psychophysics and electrophysiology indicate that humans are sensitive to these image properties. A useful tool for exploring this sense is the set of isotrigon textures. Like natural images these textures have low dimensionality relative to random images, but like random images contain no average structure in their first to third order correlation functions. Thus, the structured appearance of these textures results from higher order correlations. One way to generate the higher order products inherent in higher order correlations is recursive nonlinear processing. We therefore decided to examine if very small oscillator networks could produce a profile of activity that matches human isotrigon discrimination performance across 53 isotrigon texture types. Human performance was measured in 23 subjects. The two best network types found contained as few as 4 oscillators. The input oscillators are of a novel cubic form and the final readout oscillator was a logistic oscillator. Mean readout oscillator activity matched human performance reasonably well even though the network parameters were fixed for all 53 texture types. Overall it appears that relatively simple, short range, and biologically plausible, recursive processing could provide the basis for discrimination of complex form.
机译:自然图像富含高阶空间相关性。大脑扫描,心理物理学和电生理学表明,人类对这些图像特性很敏感。探索这种感觉的有用工具是等边三角形纹理集。像自然图像一样,这些纹理相对于随机图像具有较低的维数,但是像随机图像一样,其一阶到三阶相关函数中不包含平均结构。因此,这些纹理的结构化外观是由更高阶的相关性导致的。生成高阶相关性固有的高阶乘积的一种方法是递归非线性处理。因此,我们决定检查非常小的振荡器网络是否可以产生与53种异三角形纹理类型的人类异三角形辨别性能相匹配的活动曲线。在23位受试者中测量了人类表现。发现的两种最佳网络类型包含少至4个振荡器。输入振荡器为新颖的立方形式,最终的读数振荡器为逻辑振荡器。即使网络参数对于所有53种纹理类型都是固定的,平均读出振荡器活动也可以很好地匹配人类的表现。总体看来,相对简单,范围短且生物学上合理的递归处理可以为区分复杂形式提供基础。

著录项

  • 来源
    《Network》 |2009年第4期|233-252|共20页
  • 作者单位

    Center for Information Science, Kokushikan University, Tokyo, Japan;

    ARC Centre of Excellence in Vision Science and Centre for Visual Sciences, Research School of Biology, Australian National University, Canberra, ACT 0200, Australia;

    ARC Centre of Excellence in Vision Science and Centre for Visual Sciences, Research School of Biology, Australian National University, Canberra, ACT 0200, Australia;

    ARC Centre of Excellence in Vision Science and Centre for Visual Sciences, Research School of Biology, Australian National University, Canberra, ACT 0200, Australia;

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

    complex form; texture discrimination; isotrigon; oscillator networks;

    机译:复杂形式质地歧视;异三角振荡器网络;
  • 入库时间 2022-08-18 01:51:58

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