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A Bacterial Algorithm for Surface Mapping using a Markov Modulated Markov Chain Model of Bacterial Chemotaxis

机译:基于细菌趋化性的马尔可夫调制马尔可夫链模型的表面映射细菌算法

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Bacterial chemotaxis refers to the locomotory response of bacteria to chemical stimuli, where the general biological function is to increase exposure to some substances while reducing exposure to others. In this paper, we introduce an algorithm for surface mapping based on a model of the biological signaling network responsible for bacterial chemotaxis. The algorithm tracks the motion of a bacteria-like software agent, referred to as a bacterial agent, on an objective function. Results from simulations using one- and two-dimensional test functions show that the surface mapping algorithm produces an informative estimate of the surface, revealing some of its key characteristics. We also present a modification of the algorithm in which the software agent is given the ability to reduce the value of the surface at locations it visits (analogous to a bacterium consuming a substance as it moves in its environment) and show that it is more effective in reducing the surface integral within a certain period of time than a bacterial agent lacking the ability to sense surface information or respond to it.
机译:细菌趋化性是指细菌对化学刺激的运动反应,其中一般的生物学功能是增加对某些物质的暴露,同时减少对其他物质的暴露。在本文中,我们介绍了一种基于负责细菌趋化性的生物信号网络模型的表面映射算法。该算法跟踪目标函数上类似细菌的软件代理(称为细菌代理)的运动。使用一维和二维测试函数进行的仿真结果表明,表面映射算法可对表面进行有益的估计,从而揭示其一些关键特征。我们还对算法进行了修改,其中赋予了软件代理降低其访问位置(类似于细菌在环境中移动时消耗某种物质的细菌)表面值的能力,并证明该方法更有效。与缺乏感测表面信息或对其做出反应的能力的细菌剂相比,在一定时间内减少表面积分的作用。

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