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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Stable Hebbian learning from spike timing-dependent plasticity.
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Stable Hebbian learning from spike timing-dependent plasticity.

机译:稳定的Hebbian学习从峰值时序相关的可塑性中学习。

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摘要

We explore a synaptic plasticity model that incorporates recent findings that potentiation and depression can be induced by precisely timed pairs of synaptic events and postsynaptic spikes. In addition we include the observation that strong synapses undergo relatively less potentiation than weak synapses, whereas depression is independent of synaptic strength. After random stimulation, the synaptic weights reach an equilibrium distribution which is stable, unimodal, and has positive skew. This weight distribution compares favorably to the distributions of quantal amplitudes and of receptor number observed experimentally in central neurons and contrasts to the distribution found in plasticity models without size-dependent potentiation. Also in contrast to those models, which show strong competition between the synapses, stable plasticity is achieved with little competition. Instead, competition can be introduced by including a separate mechanism that scales synaptic strengths multiplicatively as a function of postsynaptic activity. In this model, synaptic weights change in proportion to how correlated they are with other inputs onto the same postsynaptic neuron. These results indicate that stable correlation-based plasticity can be achieved without introducing competition, suggesting that plasticity and competition need not coexist in all circuits or at all developmental stages.
机译:我们探索一种突触可塑性模型,该模型结合了最近的发现,即精确定时的突触事件对和突触后突峰可以诱导增强和抑制。另外,我们包括观察到,强突触比弱突触具有相对较少的增强,而抑郁与突触强度无关。随机刺激后,突触权重达到平衡分布,该分布稳定,单峰且具有正偏斜。该重量分布有利地与在中央神经元中实验观察到的数量振幅和受体数量的分布相比较,并且与没有大小依赖性增强作用的可塑性模型中的分布形成对比。同样,与那些显示突触之间竞争激烈的模型相反,稳定的可塑性几乎没有竞争。取而代之的是,竞争可以通过包括一个单独的机制来引入,该机制根据突触后活动成倍地缩放突触强度。在此模型中,突触权重的变化与它们与同一突触后神经元上其他输入的关联程度成正比。这些结果表明,在不引入竞争的情况下可以实现基于相关性的稳定可塑性,这表明可塑性和竞争不需要在所有回路或所有发展阶段中共存。

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