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Amoeba-based Chaotic Neurocomputing: Combinatorial Optimization by Coupled Biological Oscillators

机译:基于变形虫的混沌神经计算:耦合生物振荡器的组合优化。

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摘要

We demonstrate a neurocomputing system incorporatingrnan amoeboid unicellular organism, the true slime mold Physarum, known to exhibit rich spatiotemporal oscillatory behavior and sophisticated computational capabilities. Introducing optical feedback applied according to a recurrent neural network model, we induce that the amoeba's photosensitive branches grow or degenerate in a network-patterned chamber in search of an optimal solution to the traveling salesman problem (TSP), where the solution corresponds to the amoeba's stably relaxed configuration (shape), in which its body area is maximized while the risk of being illuminated is minimized. Our system is capable of reaching the optimal solution of the four-city TSP with a high probability. Moreover, our system can find more than one solution, because the amoeba can coordinate its branches' oscillatory movements to perform transitional behavior among multiple stable configurations by spontaneously switching between the stabilizing and destabilizing modes. We show that the optimization capability is attributable to the amoeba's fluctuating oscillatory movements. Applying several surrogate data analyses, we present results suggesting that the amoeba can be characterized as a set of coupled chaotic oscillators.
机译:我们演示了一个神经计算系统,结合了rnan amoeboid单细胞生物,真正的粘液霉菌Physarum,已知具有丰富的时空振荡行为和复杂的计算能力。引入根据递归神经网络模型应用的光学反馈,我们得出结论,变形虫的光敏分支在网络模式的室内生长或退化,以寻找旅行商问题(TSP)的最佳解决方案,其中该解决方案对应于变形虫的稳定放松的配置(形状),其中其主体区域最大化,同时被照明的风险最小化。我们的系统能够以较高的概率达到四城市TSP的最佳解决方案。此外,我们的系统可以找到不止一种解决方案,因为变形虫可以通过自发在稳定模式和去稳定模式之间进行切换来协调其分支的振荡运动,从而在多个稳定配置之间执行过渡行为。我们表明优化能力归因于变形虫的波动的振荡运动。应用几种替代数据分析,我们目前的结果表明变形虫可以表征为一组耦合的混沌振荡器。

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