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Analog-Digital Approach in Human Brain Modeling

机译:人脑建模中的模拟数字方法

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Many companies and institutions in their attempts construct decision-making system, face a bottleneck in performance of their systems. Training neural networks can take from several days to several weeks. The traditional approach suggests modification of modern systems and microcircuits as long as their performance reaches a permissible limit. A different approach, unconventional, looks for opportunities in computing inspired by the human brain, neuromorphic computing. The idea was proposed by the engineer Carver Mead in the 80s and suggests combining artificial neural networks with specialized microcircuits. The architecture of the microchip needs to reproduce the mechanisms of the human brain and to be a kind of hardware support for neural networks. Last decade is characterized by a sharp growth of interest in neuromorphic computing, human brain modeling and peculiarities of how it works during making decisions. This is evidenced by the launch of a large-scale research programs like DARPA SyNAPSE (USA) and the Human Brain Project (EU), the purpose of which is to build a microprocessor system, which resembles the human brain in functionality, size and energy consumption. Existing models of the brain even on powerful supercomputers require significant computation time and are not yet able to solve problems in real time. Since the human brain consists of two parts with different functions and different data processing principles, there is a very promising approach which suggests combining digital and analog systems into single one. In current collaboration we incorporate some results of study of activity of human brain as a base of building of hybrid computational system and foundation to the approach of running it.
机译:许多公司和机构在他们尝试构建决策系统,面临其系统性能的瓶颈。培训神经网络可能需要几天到几周。传统方法表明,只要其性能达到允许的极限,即可改变现代系统和微电路。一种不同的方法,非常规,寻找计算机的机会,灵感来自人类脑,神经形态计算。该想法是由80年代的工程师Carver Mead提出,并建议将人工神经网络与专用微电路相结合。微芯片的架构需要重现人类大脑的机制,并成为神经网络的一种硬件支持。去年的特点是患有神经形态计算,人脑建模和在做出决定期间如何运作的兴趣的急剧增长。这是通过DARPA Synapse(USA)和人脑项目(EU)这样的大规模研究计划所证明的,其目的是建立一个微处理器系统,它类似于人类的功能,尺寸和能量消耗。即使在强大的超级计算机上也需要大脑的现有模型需要显着的计算时间,并且尚未实时解决问题。由于人类大脑由具有不同功能和不同数据处理原理的两部分组成,因此存在非常有希望的方法,这表明将数字和模拟系统组合成单一的方法。在目前的合作中,我们将人类大脑活动的一些研究结果作为混合计算系统的建设基础以及运行方法的方法。

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