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Towards implementation of cellular automata in microbial fuel cells

机译:致力于在微生物燃料电池中实现细胞自动机

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摘要

The Microbial Fuel Cell (MFC) is a bio-electrochemical transducer converting waste products into electricity using microbial communities. Cellular Automaton (CA) is a uniform array of finite-state machines that update their states in discrete time depending on states of their closest neighbors by the same rule. Arrays of MFCs could, in principle, act as massive-parallel computing devices with local connectivity between elementary processors. We provide a theoretical design of such a parallel processor by implementing CA in MFCs. We have chosen Conway’s Game of Life as the ‘benchmark’ CA because this is the most popular CA which also exhibits an enormously rich spectrum of patterns. Each cell of the Game of Life CA is realized using two MFCs. The MFCs are linked electrically and hydraulically. The model is verified via simulation of an electrical circuit demonstrating equivalent behaviours. The design is a first step towards future implementations of fully autonomous biological computing devices with massive parallelism. The energy independence of such devices counteracts their somewhat slow transitions—compared to silicon circuitry—between the different states during computation.
机译:微生物燃料电池(MFC)是一种生物电化学传感器,可利用微生物群落将废物转化为电能。元胞自动机(CA)是有限状态机的统一阵列,它们根据同一规则根据其最近邻居的状态在离散时间内更新其状态。原则上,MFC阵列可以充当大规模并行计算设备,并在基本处理器之间具有本地连接性。通过在MFC中实现CA,我们提供了这种并行处理器的理论设计。我们选择了Conway的“人生游戏”作为“基准” CA,因为这是最受欢迎的CA,它也显示出非常丰富的图案。生命游戏CA的每个单元都是使用两个MFC实现的。 MFC电气连接和液压连接。该模型通过演示等效行为的电路仿真进行了验证。该设计是迈向具有大规模并行性的全自动生物计算设备未来实现的第一步。与硅电路相比,这种设备的能量独立性抵消了计算过程中不同状态之间的缓慢过渡。

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