Title :
A two-stage cluster-based resource management scheme in ultra-dense networks
Author :
Rong Wei ; Ying Wang ; Yuan Zhang
Author_Institution :
State Key Lab. of Networking & Switching Technol., Beijing Univ. of Posts & Telecommun., Beijing, China
Abstract :
As the demand for mobile data services skyrockets and the scarcity of spectrum increasing, femtocell networks overlaying with macrocell networks becomes a promising solution. However, the dense and random deployment of femto-cells and their uncoordinated operations cause severe inter-cell interference. This paper studies cluster-based wireless resource management issues in ultra-dense networks (UDN). Firstly, a modified K-means algorithm is performed in the clustering process. A reasonable number of clusters is derived instead of the predefined value as the input parameter. The wireless resource management is investigated to maximize the sum-throughput in UDN. Specifically, this paper propose a two-stage resource management scheme to solve this problem. In the first stage, primary resource allocation is performed by using a greedy search algorithm in each cluster. In the second stage, a supplementary allocation algorithm (SAA) is presented to assign the remainder subchannels. Finally, numerical results show that the proposed scheme achieves a satisfying performance in terms of average SINR, the system throughput, and the spatial spectrum efficiency, which provides guidelines for the practical dense deployment of femtocells.
Keywords :
femtocellular radio; frequency allocation; greedy algorithms; search problems; telecommunication network management; UDN; average SINR; cluster-based resource management scheme; clustering process; femtocell dense deployment; greedy search algorithm; modified K-means algorithm; primary resource allocation; spatial spectrum efficiency; supplementary allocation algorithm; two-stage resource management scheme; ultradense networks; wireless resource management; Clustering algorithms; Interference; Macrocell networks; Resource management; Signal to noise ratio; Throughput; Wireless communication;
Conference_Titel :
Communications in China (ICCC), 2014 IEEE/CIC International Conference on
Conference_Location :
Shanghai
DOI :
10.1109/ICCChina.2014.7008373