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首页> 外文期刊>International journal of unconventional computing >Hallmarks of Criticality in Neuronal Networks Depend on Cell Type and the Temporal Resolution of Neuronal Avalanches
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Hallmarks of Criticality in Neuronal Networks Depend on Cell Type and the Temporal Resolution of Neuronal Avalanches

机译:神经网络中临界的标志依赖于细胞类型和神经元雪崩的时间分辨率

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摘要

The human brain has a remarkable capacity for computation, and it has been theorized that this capacity arises from the brain self-organizing into the critical state, a dynamical state poised between ordered and disordered behavior and widely considered to be well-suited for computation. Criticality is commonly identified in in vitro neuronal networks using an analytical approach based on the size distribution of cascades of activity called neuronal avalanches. In this study, criticality analysis was applied to different in vitro neuronal networks with two areas of focus: evaluating the effect of the size of the time bins used for neuronal avalanche detection and observation of the development of networks of neurons derived from human induced pluripotent stem cells. This preliminary study is expected to aid in the construction of models capable of emulating neuronal behaviors identified as well-suited for computation and ultimately inform the development of brain-inspired computing substrates that are better able to keep pace with increased demand for data storage and processing power.
机译:人脑具有显着的计算能力,已经理解这种能力从大脑自组织进入临界状态,动态状态在有序和无序行为之间处理,并被广泛认为是适合计算的良好。基于称为神经元雪崩的级联的级联的尺寸分布,通常使用分析方法在体外神经元网络中常识。在该研究中,将临​​界分析应用于具有两个重点的不同体外神经元网络:评估用于神经元雪崩检测的时间箱大小的效果,并观察来自人诱导多能干的神经元网络的发展细胞。这项初步研究预计将有助于建设能够模拟所识别的神经元行为的模型,并最终通过开发脑启发的计算基板的发展,更好地能够随着对数据存储和加工的需求增加的需求而更好地保持速度力量。

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