信号处理
信號處理
신호처리
SIGNAL PROCESSING
2014年
12期
1427-1434
,共8页
双向中继%放大转发%同频干扰%中断概率%功率分配%中继位置
雙嚮中繼%放大轉髮%同頻榦擾%中斷概率%功率分配%中繼位置
쌍향중계%방대전발%동빈간우%중단개솔%공솔분배%중계위치
two-way relaying%amplify-and-forward%co-channel interference%outage probability%power allocation%relay location
双向中继(two-way relaying,TWR)作为提高中继网络频谱效率的一种有效手段,近年来受到广泛关注。本文研究同频干扰环境下三时隙TWR策略的中断概率性能,中继采用放大转发(amplify-and-forward,AF)策略。首先,理论推导了策略中断概率下界的闭合表达式和高信噪比下的渐进表达式。仿真表明,理论结果能够匹配策略的实际中断概率性能。根据理论结果,以最小化中断概率为目标对中继节点功率分配和中继位置参数进行优化。提出三种优化问题,即(1)给定中继位置,中继功率分配优化问题,(2)给定中继功率分配方案,中继位置优化问题,(3)联合优化中继功率分配和中继位置。仿真结果表明,联合优化能够实现最优的中断概率性能。
雙嚮中繼(two-way relaying,TWR)作為提高中繼網絡頻譜效率的一種有效手段,近年來受到廣汎關註。本文研究同頻榦擾環境下三時隙TWR策略的中斷概率性能,中繼採用放大轉髮(amplify-and-forward,AF)策略。首先,理論推導瞭策略中斷概率下界的閉閤錶達式和高信譟比下的漸進錶達式。倣真錶明,理論結果能夠匹配策略的實際中斷概率性能。根據理論結果,以最小化中斷概率為目標對中繼節點功率分配和中繼位置參數進行優化。提齣三種優化問題,即(1)給定中繼位置,中繼功率分配優化問題,(2)給定中繼功率分配方案,中繼位置優化問題,(3)聯閤優化中繼功率分配和中繼位置。倣真結果錶明,聯閤優化能夠實現最優的中斷概率性能。
쌍향중계(two-way relaying,TWR)작위제고중계망락빈보효솔적일충유효수단,근년래수도엄범관주。본문연구동빈간우배경하삼시극TWR책략적중단개솔성능,중계채용방대전발(amplify-and-forward,AF)책략。수선,이론추도료책략중단개솔하계적폐합표체식화고신조비하적점진표체식。방진표명,이론결과능구필배책략적실제중단개솔성능。근거이론결과,이최소화중단개솔위목표대중계절점공솔분배화중계위치삼수진행우화。제출삼충우화문제,즉(1)급정중계위치,중계공솔분배우화문제,(2)급정중계공솔분배방안,중계위치우화문제,(3)연합우화중계공솔분배화중계위치。방진결과표명,연합우화능구실현최우적중단개솔성능。
Recently,two-way relaying (TWR)has received much attention as a powerful approach to improve the spectral ef-ficiency of the relaying networks.In this paper,the outage performance of three-time-slot TWR protocol with co-channel interfer-ence was analyzed,where the relay adopts the amplify-and-forward protocol.The lower bound and asymptotic expressions of out-age probability were derived in closed-form and were shown to provide a good approximation to the exact performance.With the theoretic results,the power allocation at the relay and relay location were optimized in order to minimize the outage performance. Three optimization problems were proposed,i.e.,(1 )the optimal power allocation at the relay with fixed relay location,(2)the optimal relay location with fixed power allocation at the relay,(3)joint optimization of power allocation at the relay and relay lo-cation.The results show that the joint optimization scheme can achieve the best performance.