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Hybrid Artificial Intelligent Algorithm for Call Admission Control in WCDMA Mobile Network

机译:WCDMA移动网络中呼叫入院控制的混合人工智能算法

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In wideband code division multiple access (WCDMA) mobile network, total transmission power of Node B depends on diverse factors such as accommodation of new service request, termination of active user equipment (UE) and movement of UE. This makes power prediction a complicated task. In this paper, support vector regression (SVR) has been implemented successfully to forecast next interval power consumption at Node B with different type of antenna system. The predicted output is used by WCDMA mobile network to make decision on new service request admission. Genetic algorithm is then applied to form beams with minimum power to cover all UEs in a macro cell. The proposed algorithm, support vector regression assists genetic algorithm (SVRaGA) was tested in a dynamic WCDMA mobile network simulator. Simulation results have shown SVR can predict next cycle power usage at Node B with excellent accuracy and improve the quality of service (QoS) by minimizing dropped calls in the system.
机译:在宽带码分多次访问(WCDMA)移动网络中,节点B的总传输功率取决于各种因素,例如新的服务请求的住宿,活动用户设备(UE)的终止和UE的移动。这使得功率预测成为一个复杂的任务。在本文中,已经成功实现了支持向量回归(SVR),以预测具有不同类型的天线系统的节点B处的下一个间隔功耗。 WCDMA移动网络使用预测的输出来决定新的服务请求入学。然后施加遗传算法以形成具有最小功率的光束,以覆盖宏小区中的所有UE。在动态WCDMA移动网络模拟器中测试了所提出的算法,支持向量回归辅助遗传算法(SVRAGA)。仿真结果表明,SVR可以通过最小化系统中的拨打呼叫来预测节点B处的下一个周期功率使用,并通过最小化丢弃呼叫来提高服务质量(QoS)。

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