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神经网络语境下的自构造指令语言。

An instruction language for self-construction in the context of neural networks.

机构信息

Institute of Neuroinformatics, University of Zürich / Swiss Federal Institute of Technology Zürich Zürich, Switzerland.

出版信息

Front Comput Neurosci. 2011 Dec 8;5:57. doi: 10.3389/fncom.2011.00057. eCollection 2011.

Abstract

Biological systems are based on an entirely different concept of construction than human artifacts. They construct themselves by a process of self-organization that is a systematic spatio-temporal generation of, and interaction between, various specialized cell types. We propose a framework for designing gene-like codes for guiding the self-construction of neural networks. The description of neural development is formalized by defining a set of primitive actions taken locally by neural precursors during corticogenesis. These primitives can be combined into networks of instructions similar to biochemical pathways, capable of reproducing complex developmental sequences in a biologically plausible way. Moreover, the conditional activation and deactivation of these instruction networks can also be controlled by these primitives, allowing for the design of a "genetic code" containing both coding and regulating elements. We demonstrate in a simulation of physical cell development how this code can be incorporated into a single progenitor, which then by replication and differentiation, reproduces important aspects of corticogenesis.

摘要

生物系统基于与人类制品完全不同的构建概念。它们通过自组织过程构建自身,这是各种专门细胞类型的系统时空产生和相互作用的过程。我们提出了一个用于设计基因样代码的框架,以指导神经网络的自我构建。通过定义皮质发生过程中神经前体细胞局部采取的一组基本动作,对神经网络的发展进行了描述。这些原语可以组合成类似于生化途径的指令网络,能够以生物上合理的方式复制复杂的发育序列。此外,这些指令网络的条件激活和失活也可以由这些原语控制,从而可以设计包含编码和调节元件的“遗传密码”。我们在物理细胞发育的模拟中演示了如何将这个代码合并到一个单一的祖细胞中,然后通过复制和分化,再现皮质发生的重要方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63cc/3233694/4f6ec5afc11d/fncom-05-00057-g001.jpg

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