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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Hierarchical organization of macaque and cat cortical sensory systems explored with a novel network processor
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Hierarchical organization of macaque and cat cortical sensory systems explored with a novel network processor

机译:用新型网络处理器探索猕猴和猫皮层感觉系统的层次结构

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摘要

Neuroanatomists have described a large number of connections between the various structures of monkey and cat cortical sensory systems. Because of the complexity of the connection data, analysis is required to unravel what principles of organization they imply. To date, analysis of laminar origin and termation connection data to reveal hierarchical relationships between the cortical areas has been the most widely acknowledged approach. We programmed a network processor that searches for optimal hierarchical orderings of cortical areas given known hierarchical constraints and rules for their interpretation. For all cortical systems and all cost functions, the processor found a multitude of equally low-cost hierarchies. Laminar hierarchical constraints that are presently available in the anatomical literature were therefore insufficient to constrain a unique ordering for any of the sensory systems we analysed. Hierarchical orderings of the monkey visual system that have been widely reported, but which were derived by hand, were not among the optimal orderings. All the cortical systems we studied displayed a significant degree of hierarchical organization, and the anatomical constraints from the monkey visual and somatomotor systems were satisfied with very few constraint violations in the optimal hierarchies. The visual and somato-motor systems in that animal were therefore surprisingly strictly hierarchical. Most inconsistencies between the constraints and the hierarchical relationships in the optimal structures for the visual system were related to connections of area FST (fundus of superior temporal sulcus). The found that the hierarchical solutions could be further improved by assuming that FST consists of two areas, which differ in the nature of their projections. Indeed, we found that perfect hierarchical arrangements of the primate visual system, without any violation of anatomical constraints, could be obtained under two reasonable conditions, namely the subdivision of FST into two distinct areas, whose connectivity we predict, and the abolition of at least one of the less reliable rule constraints. Our analyses showed that the future collection of the same type of laminar constraints, or the inclusion of new hierarchical constraints from thalamocortical connections, Mill not resolve the problem of multiple optimal hierarchical representations for the primate visual system. Further data, however, may help to specify the relative ordering of some more areas. This indeterminacy of the visual hierarchy is in part due to the reported absence of some connections between cortical areas. These absences are consistent with limited cross-talk between differentiated processing streams in the system. Hence, hierarchical representation of the visual system is affected by, and must take into account, other organizational features. such as processing streams. [References: 37]
机译:神经解剖学家已经描述了猴子和猫皮层感觉系统的各种结构之间的大量联系。由于连接数据的复杂性,需要进行分析以阐明它们所暗示的组织原则。迄今为止,对层流起源和术语连接数据的分析以揭示皮层区域之间的层次关系已成为最广泛认可的方法。我们编程了一个网络处理器,该处理器在已知的分层约束和解释规则的情况下搜索皮质区域的最佳分层顺序。对于所有皮质系统和所有成本功能,处理器都找到了许多同样低成本的层次结构。因此,目前在解剖学文献中可获得的层状分层约束条件不足以约束我们分析的任何感觉系统的唯一顺序。猴子视觉系统的分层排序已被广泛报道,但是它们是通过手工得出的,并不是最佳排序。我们研究的所有皮质系统都显示出高度的层次结构,并且在最佳层次结构中,很少有违反约束的情况,因此满足了猴子视觉和躯体运动系统的解剖学约束。因此,该动物的视觉和躯体运动系统令人惊讶地严格分级。在视觉系统的最佳结构中,约束和层次关系之间的大多数不一致性与区域FST(上颞沟的眼底)的连接有关。发现通过假设FST由两个区域组成,可以进一步改善分层解决方案,这两个区域的预测性质不同。实际上,我们发现在两个合理的条件下可以获得灵长类动物视觉系统的完美层次结构,而没有任何违反解剖学约束的情况,即将FST细分为两个不同的区域,我们预测它们的连通性,并且至少废除了不太可靠的规则约束之一。我们的分析表明,将来收集相同类型的层状约束或从丘脑皮质连接中引入新的层次约束,Mill不能解决灵长类视觉系统的多个最佳层次表示问题。但是,进一步的数据可能有助于指定更多区域的相对顺序。视觉层次结构的不确定性部分是由于所报道的皮质区域之间没有某些连接的缘故。这些缺失与系统中差异化处理流之间有限的串扰相一致。因此,视觉系统的分层表示受其他组织功能的影响,并且必须考虑其他组织功能。例如处理流。 [参考:37]

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