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A metaheuristic-based method for replica selection in the Internet of Things

机译:基于综合性选择的基于媒体学的方法

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摘要

With the advent of the Internet of Things (IoT), the count of gadgets connected to the Internet has been increased. IoT, as a modern paradigm, has been used to describe the future in which physical things like RFID tags, sensors, actuators, and cellphones can intermingle for achieving shared purposes. Also, we can employ cloud computing for storing the things' information in the IoT. However, this information has been replicated through the network for increasing availability. In this paper, due to the NP-hard nature of the replica selection problem, an improved version of ant colony optimization (IACO) has been applied. The impact of pheromone on the chosen path is converted by ants to invert the underlying logic of ACO. Due to the existence of different IoT centers, the IACO has been employed for selecting the replicated data in the IoT where the load balancing among IoT centers has been considered. In this method, an ant chooses the ideal point for its movement; then others may not pass the track that the preceding ants have been passed. The obtained outcomes have shown that the method has outperformed the ACO, HQFR, and RTRM approaches regarding the waiting time and load balancing.
机译:随着事物互联网的出现(IOT),增加了与互联网的小工具数已增加。作为现代范式的IOT已被用于描述RFID标签,传感器,执行器和手机等物理物品的未来可以混入以实现共享目的。此外,我们可以使用云计算来存储IOT中的东西的信息。但是,此信息已通过网络复制以增加可用性。本文由于复制品选择问题的NP难度,已经应用了蚁群优化(IACO)的改进版本。信息素对所选路径的影响是由蚂蚁转换为反转ACO的潜在逻辑。由于存在不同的IOT中心,因此已经使用IACO来选择IOT中的复制数据,其中已经考虑了IOT中心之间的负载平衡。在这种方法中,ANT选择其运动的理想点;然后,其他人可能不会通过前面的蚂蚁已通过的轨道。所获得的结果表明,该方法已经表现出关于等待时间和负载平衡的ACO,HQFR和RTRM方法。

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