细胞形态电子系统:回顾与展望

IF 2.3 Q3 NANOSCIENCE & NANOTECHNOLOGY IEEE Nanotechnology Magazine Pub Date : 2021-12-01 DOI:10.1109/mnano.2021.3113192
D. R. Beahm, Yijie Deng, Tanner G. Riley, R. Sarpeshkar
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引用次数: 3

摘要

玻尔兹曼指数热力学定律控制着化学反应中有噪声的分子通量以及晶体管中有噪声亚阈值电子电流通量。这些常见的数学定律使人们能够在建立在亚阈值模拟电路上的高效细胞形态系统中绘制和模拟任意随机生化反应网络。这种模拟可以准确自动地对物理电路中互连网络中的噪声、非线性、异步、刚性和非调制反馈动力学进行建模。在细胞形态系统中,具有反应或分子数量的随机网络的模拟时间比例是恒定的。相比之下,它在不可并行的数字系统中快速增长。因此,细胞形态系统使大规模超级计算系统能够对任意和高度计算密集的生物化学反应网络进行生物学模拟,尽管如此,这些网络仍然可以通过数字可编程参数和连接进行编译。
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Cytomorphic Electronic Systems: A review and perspective
The boltzmann-exponential thermodynamic laws govern the noisy molecular flux in chemical reactions as well as the noisy subthreshold electron current flux in transistors. These common mathematical laws enable one to map and simulate arbitrary stochastic biochemical reaction networks in highly efficient cytomorphic systems built on subthreshold analog circuits. Such simulations can accurately and automatically model noisy, nonlinear, asynchronous, stiff, and nonmodular feedback dynamics in interconnected networks in physical circuits. The scaling in simulation time for stochastic networks with the number of reactions or molecules is constant in cytomorphic systems. By contrast, it grows rapidly in digital systems, which are not parallelizable. Therefore, cytomorphic systems enable large-scale supercomputing systems-biology simulations of arbitrary and highly computationally intensive biochemical reaction networks that can nevertheless be compiled via digitally programmable parameters and connectivity.
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来源期刊
IEEE Nanotechnology Magazine
IEEE Nanotechnology Magazine NANOSCIENCE & NANOTECHNOLOGY-
CiteScore
2.90
自引率
6.20%
发文量
46
期刊介绍: IEEE Nanotechnology Magazine publishes peer-reviewed articles that present emerging trends and practices in industrial electronics product research and development, key insights, and tutorial surveys in the field of interest to the member societies of the IEEE Nanotechnology Council. IEEE Nanotechnology Magazine will be limited to the scope of the Nanotechnology Council, which supports the theory, design, and development of nanotechnology and its scientific, engineering, and industrial applications.
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