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国家自然科学基金(61102066)

作品数:13 被引量:20H指数:3
相关作者:许晓荣章坚武姚英彪池景秀陆宇更多>>
相关机构:杭州电子科技大学中国联合通信有限公司更多>>
发文基金:国家自然科学基金浙江省自然科学基金中国博士后科学基金更多>>
相关领域:电子电信自动化与计算机技术更多>>

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13 条 记 录,以下是 1-10
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一种新的射线追踪方法-测试镜像跟踪法
随着频谱资源的日益紧张,微蜂窝系统已经开始广泛应用,研究建立其准确的传播预测模型已经成为当下的一个研究热点。本文针对微蜂窝环境中无线接收信号特性进行了相关研究,结合镜像法、测试射线跟踪法的优点,利用源点的可视区域提出一种...
章谦骅章坚武
关键词:镜像法射线跟踪
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异步协同通信频率选择性信道高速率编码应用
2013年
协同通信中各中继通过相互协作实现协作分集,采用分布式空时编码提高传输可靠性。协同通信中信号经过不同中继的信道衰落有差异,到达接收端的信号可能存在同步误差,造成异步通信,严重影响误码性能。该文提出了对待发送信号进行线性组合后再经过正交频分复用调制广播到中继,中继对信号进行共轭或时域逆序处理后放大前传,接收端进行最大似然解码获得误码性能。仿真结果表明,线性组合后的编码具有较好的系统误码性能,而且编码速率也得到提高。
马云剑章坚武
关键词:协同通信异步通信高速率空时编码
AN ADAPTIVE MEASUREMENT SCHEME BASED ON COMPRESSED SENSING FOR WIDEBAND SPECTRUM DETECTION IN COGNITIVE WSN被引量:1
2012年
An Adaptive Measurement Scheme (AMS) is investigated with Compressed Sensing (CS) theory in Cognitive Wireless Sensor Network (C-WSN). Local sensing information is collected via energy detection with Analog-to-Information Converter (AIC) at massive cognitive sensors, and sparse representation is considered with the exploration of spatial temporal correlation structure of detected signals. Adaptive measurement matrix is designed in AMS, which is based on maximum energy subset selection. Energy subset is calculated with sparse transformation of sensing information, and maximum energy subset is selected as the row vector of adaptive measurement matrix. In addition, the measurement matrix is constructed by orthogonalization of those selected row vectors, which also satisfies the Restricted Isometry Property (RIP) in CS theory. Orthogonal Matching Pursuit (OMP) reconstruction algorithm is implemented at sink node to recover original information. Simulation results are performed with the comparison of Random Measurement Scheme (RMS). It is revealed that, signal reconstruction effect based on AMS is superior to conventional RMS Gaussian measurement. Moreover, AMS has better detection performance than RMS at lower compression rate region, and it is suitable for large-scale C-WSN wideband spectrum sensing.
Xu XiaorongZhang JianwuHuang AipingJiang Bin
A SPARSITY AND COMPRESSION RATIO JOINT ADJUSTMENT METHOD FOR COLLABORATIVE SPECTRUM SENSING被引量:1
2012年
Spectrum sensing is the fundamental task for Cognitive Radio (CR). To overcome the challenge of high sampling rate in traditional spectral estimation methods, Compressed Sensing (CS) theory is developed. A sparsity and compression ratio joint adjustment algorithm for compressed spectrum sensing in CR network is investigated, with the hypothesis that the sparsity level is unknown as priori knowledge at CR terminals. As perfect spectrum reconstruction is not necessarily required during spectrum detection process, the proposed algorithm only performs a rough estimate of sparsity level. Meanwhile, in order to further reduce the sensing measurement, different compression ratios for CR terminals with varying Signal-to-Noise Ratio (SNR) are considered. The proposed algorithm, which optimizes the compression ratio as well as the estimated sparsity level, can greatly reduce the sensing measurement without degrading the detection performance. It also requires less steps of iteration for convergence. Corroborating simulation results are presented to testify the effectiveness of the proposed algorithm for collaborative spectrum sensing.
Chi JingxiuZhang JianwuXu Xiaorong
一种基于能量有效性的贝叶斯宽带压缩频谱检测方法
认知无线网络(CRN)的能耗问题已成为制约CRN未来应用的一个重要因素。该文提出了一种在保障节点能量有效性基础上进行基于贝叶斯压缩感知(BCS)稀疏重构的CRN宽带频谱检测方法。推导了感知能耗解析式并构造能耗优化问题,在...
王赞许晓荣姚英彪
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WORST SUBCARRIER AVOIDING WATER-FILLING SUBCARRIER ALLOCATION SCHEME FOR OFDM-BASED CRN被引量:3
2012年
Efficient and reliable subcarrier power joint allocation is served as a promising problem in cognitive OFDM-based Cognitive Radio Networks (CRN). This paper focuses on optimal subcarrier allocation for OFDM-based CRN. We mainly propose subcarrier allocation scheme denoted as Worst Subcarrier Avoiding Water-filling (WSAW), which is based on Rate Adaptive (RA) criterion and three constraints are considered in CRN. The algorithm divides the assignment procedure into two phases. The first phase is an initial subcarrier allocation based on the idea of avoiding selecting the worst subcarrier in order to maximize the transmission rate; while the second phase is an iterative adjustment process which is realized by swapping pairs of subcarriers between arbitrary users. The proposed scheme could assign subcarriers in accordance with channel coherence time. Hence, real time subcarrier allocation could be implemented. Simulation results show that, comparing with the similar existing algorithms, the proposed scheme could achieve larger capacity and a near-optimal BER performance.
Zhang JianwuChi JingxiuXu Xiaorong
一种基于轮回的认知OFDM子载波分配方法
2012年
认知无线电技术是能够提高有限频谱利用率,进而缓解当前有限频谱资源短缺压力的有效手段。在多用户认知OFDM系统中,高效并合理地决定子载波分配对系统性能至关重要。本文提出了一种基于轮回思想的子载波分配算法。该算法首先通过基于轮回的初次分配达到兼顾公平性的目的,再通过二次分配对初次分配结果加以迭代优化。仿真结果表明,在不增加算法复杂度的前提下,该算法可以避免选择深度衰落的子信道,相比同类算法,该算法可以获得更优的误比特性能。
池景秀许晓荣章坚武
关键词:轮回子载波分配
认知OFDM中的抗干扰分段编码设计
2012年
认知正交频分复用(OFDM)中主用户突发干扰会造成认知用户数据包丢失。为此,提出一种基于认知OFDM的抗干扰分段编码方案。分段编码基于低冗余度的优化设计方法进行构造。该抗干扰分段编码方案可通过对偶校验分组恢复丢失的数据包,在认知用户通信过程中避免主用户突发干扰。实验结果表明,在低干扰率情况下,该方案比无码率编码方案具有更低的帧差错率和更高的吞吐量性能。
徐华阳许晓荣庄智威马欢
关键词:吞吐量性能
L-CR系统中分布式压缩感知最小角回归信号重构
2016年
在低轨(LEO)微小卫星感知无线电(L-CR)系统中,多个LEO卫星节点具备一定的频谱感知功能,卫星节点通过分布式组网对地面信关站发射的信息进行感知、传输和处理,地面汇聚节点对LEO卫星节点转发信号进行重构。考虑LEO系统中授权频带的主用户(PU)对卫星认知用户(SU)的干扰,认知用户感知到的信号同时存在PU干扰和噪声,地面汇聚节点通过高效的重构算法进行含噪信号恢复是L-CR系统实现的重要问题。论文研究了LCR系统中基于分布式压缩感知的信号重构方法。针对L-CR特点,分别分析了汇聚节点在低信噪比情况下采用凸松弛法中的基追踪去噪(BPDN)、同伦(Homotopy)法和最小角回归(Lars)的重构均方误差(MSE)与重构复杂度。研究表明,BPDN具有最小的重构MSE,但其重构复杂度最高。Lars可以有效折衷重构MSE与复杂度。在此基础上,提出了基于分布式压缩感知的最小角回归(DCS-Lars)信号重构方案。仿真结果表明,所提DCS-Lars方法可以在低信噪比情况下有效重构感知信号,并具有良好的频谱检测能力,同时重构复杂度大大降低。
许晓荣胡慧章坚武
关键词:信号重构
认知WSN中基于能量有效性自适应观测的梯度投影稀疏重构方法被引量:6
2014年
针对认知无线传感器网络中传感器节点侧的模拟信息转换器对本地感知数据进行稀疏表示与压缩测量,该文提出一种基于能量有效性观测的梯度投影稀疏重构(GPSR)方法。该方法根据事件区域内认知节点对实际感知到的非平稳信号空时相关性结构,映射到小波正交基级联字典进行稀疏变换,通过加权能量子集函数进行自适应观测,以能量有效的方式获取合适的观测值,同时对所选观测向量进行正交化构造测量矩阵。汇聚节点采用GPSR算法进行自适应压缩重构。仿真比较了GPSR自适应重构与正交匹配追踪(OMP)重构算法。仿真结果表明,在压缩比小于0.2的区域内,基于能量有效性观测的GPSR自适应重构效果优于传统随机高斯测量信号重构。在相同节点数情况下,GPSR自适应压缩重构方法在低信噪比区域内具有较小的重构均方误差,且该方法所需观测数明显低于随机高斯观测,同时有效保障了感知节点的能耗均衡。
许晓荣姚英彪包建荣陆宇
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