Yeshurun Y, Dyn N, Wollberg Z
Biol Cybern. 1987;56(4):261-8. doi: 10.1007/BF00365221.
Neuronal systems can be described by their transfer functions, which can be represented by a Volterra series expansion. While the high level of abstraction which characterizes this representation enables a global description, it is problematic, to some extent, in the context of linking the formal representation of the system to its actual structure. The formal representation is unique, yet there are multiple physical realizations of this representation. Separating the system's output into its logical components (linear, cross-linear, and self nonlinear, in this study), and inspecting the relative contribution of these components, might provide a key towards a linkage between the formal and actual representations. Based on results drawn from identification of MGB cells of the squirrel monkey, it is shown that the relative contributions can be described in neurobiological terms such as excitation and inhibition and thus be attributed to actual subsystems.
神经元系统可以用它们的传递函数来描述,这些传递函数可以用沃尔泰拉级数展开来表示。虽然这种表示法的高度抽象性能够实现全局描述,但在将系统的形式表示与其实际结构联系起来的背景下,它在某种程度上存在问题。形式表示是唯一的,但这种表示有多种物理实现方式。将系统的输出分离为其逻辑成分(在本研究中为线性、交叉线性和自非线性),并检查这些成分的相对贡献,可能为形式表示与实际表示之间的联系提供关键。基于对松鼠猴内侧膝状体细胞识别得出的结果表明,相对贡献可以用诸如兴奋和抑制等神经生物学术语来描述,因此可以归因于实际的子系统。