Smith T G, Lange G D, Marks W B
Laboratory of Neurophysiology, NINDS, National Institutes of Health, Bethesda, MD 20892, USA.
J Neurosci Methods. 1996 Nov;69(2):123-36. doi: 10.1016/S0165-0270(96)00080-5.
This paper discusses the concepts of fractal geometry in a cellular biological context. It defines the concept of the fractal dimension. D, as a measure of complexity and illustrates the two different general ways of quantitatively measuring D by length-related and mass-related methods. Then, these several Ds are compared and contrasted. A goal of the paper is to find methods other than length-related measures that can distinguish between two objects that have the same D but are structurally different. The mass-related D is shown potentially to be such a measure. The concept of lacunarity, L, is defined and methods of measuring L are illustrated. L is also shown to be a potentially distinguishing measure. Finally, the notion of multifracticality is defined and illustrated to exist in certain individual nerve and glial cells.
本文讨论了细胞生物学背景下的分形几何概念。它定义了分形维数D的概念,作为复杂性的一种度量,并说明了通过与长度相关和与质量相关的方法定量测量D的两种不同一般方式。然后,对这几种分形维数进行了比较和对比。本文的一个目标是找到除与长度相关的测量方法之外的其他方法,这些方法可以区分具有相同分形维数但结构不同的两个物体。与质量相关的分形维数被证明可能是这样一种测量方法。定义了孔隙率L的概念,并说明了测量L的方法。L也被证明是一种潜在的区分度量。最后,定义并说明了多实用性的概念,并表明其存在于某些单个神经细胞和神经胶质细胞中。