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A Double Herd Krill Based Algorithm for Location Area Optimization in Mobile Wireless Cellular Network

机译:一种用于移动无线蜂窝网络中的位置区域优化的双畜禽基础克里尔算法

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In wireless communication systems, mobility tracking deals with determining a mobile subscriber (MS) covering the area serviced by the wireless network. Tracking a mobile subscriber is governed by the two fundamental components called location updating (LU) and paging. This paper presents a novel hybrid method using a krill herd algorithm designed to optimize the location area (LA) within available spectrum such that total network cost, comprising location update (LU) cost and cost for paging, is minimized without compromise. Based on various mobility patterns of users and network architecture, the design of the LR area is formulated as a combinatorial optimization problem. Numerical results indicate that the proposed model provides a more accurate update boundary in real environment than that derived from a hexagonal cell configuration with a random walk movement pattern. The proposed model allows the network to maintain a better balance between the processing incurred due to location update and the radio bandwidth utilized for paging between call arrivals.
机译:在无线通信系统中,移动性跟踪处理涉及确定覆盖由无线网络服务的区域的移动用户(MS)。跟踪移动订户由称为位置更新(LU)和分页的两个基本组件。本文介绍了一种新颖的混合方法,该方法使用旨在优化可用光谱内的位置区域(LA),使得总网络成本,包括位置更新(LU)成本和寻呼成本,不会妥协。基于用户和网络架构的各种移动模式,将LR区域的设计配制为组合优化问题。数值结果表明,所提出的模型在真实环境中提供比具有随机步行运动模式的六边形单元配置的更准确的更新边界。所提出的模型允许网络在由于位置更新和用于在呼叫到达之间寻呼的无线电带宽之间的处理之间保持更好的平衡。

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