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Complex motion processing mechanisms in the posterior parietal lobe: Psychophysics and computational modeling.

机译:顶叶后叶的复杂运动处理机制:心理物理学和计算模型。

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摘要

In the work presented here we combine human psychophysical performance with physiologically based neural models to elucidate the neural structures and computational processes underlying flow-based motion pattern processing of the visual scene. Our aim is to link human visual motion perception to putative neural structures in the medial superior temporal (MST) cortex of non-human primates that are sufficient to encode and process ecologically relevant motion patterns encountered in the visual environment.; First we quantify psychophysical thresholds to perturbations in the motion pattern structure, speed, and center-of-motion (COM) across a broad range of experimental conditions. We discuss these results within the context of local versus global motion processing mechanisms and examine the trends in performance for perceptual correlates to the motion pattern properties reported in cortex. To account for the observed performance in a subset of the psychophysical tasks, we develop physiologically constrained computational models to identify neural structures within MST sufficient to encode the visual motion tasks. Within simulated populations of MST-like units we identify a robust set of anti-preferred inhibitory structures whose computational effects on equivalent measures of perceptual performance are consistent with those of human observers. We interpret these results as suggesting that the robust processing of motion patterns associated with self-motion and optic flow is mediated by similar neural structures in the human homologue to MST.; In a second set of experiments we quantify object trajectory discrimination in the presence of planar background motions. We show that discrimination thresholds are consistently lower when objects move opposite a wide-field planar motion than when they move in the same direction. We discuss these results in the context of a specialized set of relative motion detectors within the cortex and propose additional experimental tasks to quantify interactions between the motion pattern and relative motion mechanisms proposed here.; Given the purported role of flow-based motion processing in tasks of visually guided navigation, the systematic examination of the underlying perceptual and neural motion mechanisms provides additional insights into the cortical and computational structures linking perception to action in the human visual system.
机译:在本文介绍的工作中,我们将人类的心理生理性能与基于生理的神经模型相结合,以阐明基于视觉场景的基于流的运动模式处理的神经结构和计算过程。我们的目标是将人类视觉运动感知与非人类灵长类动物的内侧上颞叶(MST)皮质中的假定神经结构联系起来,该结构足以编码和处理视觉环境中遇到的与生态相关的运动模式。首先,我们在广泛的实验条件下,对运动模式结构,速度和运动中心(COM)摄动的心理生理阈值进行量化。我们在局部与全局运动处理机制的背景下讨论了这些结果,并检查了与皮层中报告的运动模式属性在感知上相关的性能趋势。为了说明在心理生理任务子集中观察到的性能,我们开发了生理受限的计算模型,以识别MST中足以编码视觉运动任务的神经结构。在模拟的MST样单位群体中,我们确定了一组强大的抗优先抑制结构,这些结构对等效感知性能的计算效果与人类观察者的一致。我们将这些结果解释为表明与自我运动和视觉流动相关的运动模式的强大处理是由人类与MST同源物中的类似神经结构介导的。在第二组实验中,我们量化了在存在平面背景运动的情况下物体轨迹的辨别力。我们显示,与在相同方向上移动相比,当对象在宽范围平面内移动<斜体>在

著录项

  • 作者

    Beardsley, Scott Alan.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Biology Neuroscience.; Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 325 p.
  • 总页数 325
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 神经科学;生物医学工程;
  • 关键词

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