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Finding the Way with a Noisy Brain

机译:找到嘈杂的大脑的方式

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Successful navigation is fundamental to the survival of nearly every animal on earth, and achieved by nervous systems of vastly different sizes and characteristics. Yet surprisingly little is known of the detailed neural circuitry from any species which can accurately represent space for navigation. Path integration is one of the oldest and most ubiquitous navigation strategies in the animal kingdom. Despite a plethora of computational models, from equational to neural network form, there is currently no consensus, even in principle, of how this important phenomenon occurs neurally. Recently, all path integration models were examined according to a novel, unifying classification system. Here we combine this theoretical framework with recent insights from directed walk theory, and develop an intuitive yet mathematically rigorous proof that only one class of neural representation of space can tolerate noise during path integration. This result suggests many existing models of path integration are not biologically plausible due to their intolerance to noise. This surprising result imposes significant computational limitations on the neurobiological spatial representation of all successfully navigating animals, irrespective of species. Indeed, noise-tolerance may be an important functional constraint on the evolution of neuroarchitectural plans in the animal kingdom.
机译:成功的导航是地球上几乎每只动物的生存的基础,并通过神经系统实现的巨大尺寸和特征。然而,令人惊讶的是,从任何可以准确地代表导航空间的任何物种都知道的详细神经电路很少。路径集成是动物王国中最古老,最无处不在的导航策略之一。尽管有多种计算模型,从等于神经网络形式,即使原则上,目前没有共识,即使这一重要现象是多么的重要现象。最近,根据新颖的统一分类系统检查所有路径集成模型。在这里,我们将这种理论框架与最近从事散步理论的见解结合起来,并在数学上进行了直观但数学上严谨的证据,即只有一类空间的神经表示可以容忍路径集成过程中的噪音。这结果表明,由于它们对噪声的不耐受,许多现有的路径集成模型并不是生物学素质。无论物种如何,这种令人惊讶的结果对所有成功导航动物的神经生物学空间表示都造成了显着的计算限制。实际上,噪声容差可能是动物王国神经建筑计划演变的重要功能约束。

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