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自组织映射中的稳态突触缩放

Homeostatic synaptic scaling in self-organizing maps.

作者信息

Sullivan Thomas J, de Sa Virginia R

机构信息

Department of Electrical Engineering, UC San Diego, 9500 Gilman Dr. MC 0515, 92093 La Jolla, CA, United States.

出版信息

Neural Netw. 2006 Jul-Aug;19(6-7):734-43. doi: 10.1016/j.neunet.2006.05.006. Epub 2006 Jun 19.

Abstract

Various forms of the self-organizing map (SOM) have been proposed as models of cortical development [Choe Y., Miikkulainen R., (2004). Contour integration and segmentation with self-organized lateral connections. Biological Cybernetics, 90, 75-88; Kohonen T., (2001). Self-organizing maps (3rd ed.). Springer; Sirosh J., Miikkulainen R., (1997). Topographic receptive fields and patterned lateral interaction in a self-organizing model of the primary visual cortex. Neural Computation, 9(3), 577-594]. Typically, these models use weight normalization to contain the weight growth associated with Hebbian learning. A more plausible mechanism for controlling the Hebbian process has recently emerged. Turrigiano and Nelson [Turrigiano G.G., Nelson S.B., (2004). Homeostatic plasticity in the developing nervous system. Nature Reviews Neuroscience, 5, 97-107] have shown that neurons in the cortex actively maintain an average firing rate by scaling their incoming weights. In this work, it is shown that this type of homeostatic synaptic scaling can replace the common, but unsupported, standard weight normalization. Organized maps still form and the output neurons are able to maintain an unsaturated firing rate, even in the face of large-scale cell proliferation or die-off. In addition, it is shown that in some cases synaptic scaling leads to networks that more accurately reflect the probability distribution of the input data.

摘要

自组织映射(SOM)的各种形式已被提出作为皮质发育的模型[Choe Y., Miikkulainen R.,(2004年)。通过自组织横向连接进行轮廓整合和分割。生物控制论,90,75 - 88;Kohonen T.,(2001年)。自组织映射(第3版)。施普林格;Sirosh J., Miikkulainen R.,(1997年)。初级视觉皮质自组织模型中的地形感受野和模式化横向相互作用。神经计算,9(3),577 - 594]。通常,这些模型使用权重归一化来控制与赫布学习相关的权重增长。最近出现了一种更合理的控制赫布过程的机制。Turrigiano和Nelson [Turrigiano G.G., Nelson S.B.,(2004年)。发育中神经系统的稳态可塑性。自然神经科学评论,5,97 - 107]已经表明,皮质中的神经元通过调整其传入权重来积极维持平均放电率。在这项工作中,表明这种类型的稳态突触缩放可以取代常见但无依据的标准权重归一化。即使面对大规模的细胞增殖或死亡,有组织的映射仍然形成,并且输出神经元能够维持不饱和的放电率。此外,表明在某些情况下,突触缩放会导致网络更准确地反映输入数据的概率分布。

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