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Special Issue from the 2017 International Conference on Mathematical Neuroscience

机译:2017年国际数学神经科学大会特刊

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The ongoing acquisition of large and multifaceted data sets in neuroscience requires new mathematical tools for quantitatively grounding these experimental findings. Since 2015, the International Conference on Mathematical Neuroscience (ICMNS) has provided a forum for researchers to discuss current mathematical innovations emerging in neuroscience. This special issue assembles current research and tutorials that were presented at the 2017 ICMNS held in Boulder, Colorado from May 30 to June 2. Topics discussed at the meeting include correlation analysis of network activity, information theory for plastic synapses, combinatorics for attractor neural networks, and novel data assimilation methods for neuroscience—all of which are represented in this special issue.
机译:神经科学领域对大量数据的不断获取需要新的数学工具来量化这些实验结果。自2015年以来,国际数学神经科学大会(ICMNS)为研究人员提供了一个论坛,以讨论神经科学中新兴的数学创新。本期专刊汇集了5月30日至6月2日在科罗拉多州博尔德举行的2017 ICMNS上介绍的最新研究和教程。会议上讨论的主题包括网络活动的相关性分析,塑料突触的信息论,吸引子神经网络的组合学。 ,以及神经科学的新型数据同化方法,所有这些都在本期特刊中进行了介绍。

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