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Memristor-based information gathering approaches, both ant-inspired and hypothetical

机译:基于忆阻器的信息收集方法,既有蚂蚁启发的方法也有假设方法

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Novel gatherer allocation methods based on both memristor function and ant behaviour are tested in both resource rich and poor environments by simulating the non-linear aspects of gathering using memristor models. In the All Sites method gatherers are allocated according to the voltage drop across the memristor simulating each food site. This performs better in environments of a similar quality by depleting the worse sites first and then using the freed-up gatherers to make up for declining productivity elsewhere. The Leafcutter allocation method, based on ant behaviour, first depletes the best resource and then allocates gatherers as for All Sites. This method functions best in environments with a wide distribution in site quality. These models suggest approaches for dealing with data transfer between nanomachines while also demonstrating useful behaviour of memristor-based nanonetwork-on-chips. An example of information transfer under these gathering approaches is given and shows the clear superiority of the Leafcutter approach once the system contains more than small numbers of memristors. Taking the Leafcutter approach to the extreme whereby each site is depleted in turn, the Sequential allocation method, is the worst performer in all tests.
机译:通过使用忆阻器模型模拟采集的非线性方面,在资源丰富和恶劣的环境中都测试了基于忆阻器功能和蚂蚁行为的新型收集器分配方法。在“所有站点”方法中,根据模拟每个食物站点的忆阻器上的电压降来分配收集器。在质量相似的环境中,通过首先耗尽较差的站点,然后使用释放的收集器来弥补其他地方生产力的下降,这会表现更好。基于蚂蚁行为的Leafcutter分配方法首先消耗最佳资源,然后像“所有站点”一样分配收集器。该方法在站点质量分布广泛的环境中效果最佳。这些模型提出了处理纳米机器之间数据传输的方法,同时还展示了基于忆阻器的纳米芯片网络的有用行为。给出了在这些收集方法下进行信息传输的示例,该示例显示了一旦系统包含的忆阻器数量较少,则Leafcutter方法的明显优势。在所有测试中,将Leafcutter方法推向极限,即每个站点依次耗尽,顺序分配方法是最差的。

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