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Multi-narrowband signals receiving method based on analog-to-information convertor and block sparsity 被引量:2
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作者 Hongyi Xu Haiqing Jiang Chaozhu Zhang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2017年第4期643-653,共11页
The analog-to-information convertor (AIC) is a successful practice of compressive sensing (CS) theory in the analog signal acquisition. This paper presents a multi-narrowband signals sampling and reconstruction model ... The analog-to-information convertor (AIC) is a successful practice of compressive sensing (CS) theory in the analog signal acquisition. This paper presents a multi-narrowband signals sampling and reconstruction model based on AIC and block sparsity. To overcome the practical problems, the block sparsity is divided into uniform block and non-uniform block situations, and the block restricted isometry property and sub-sampling limit in different situations are analyzed respectively in detail. Theoretical analysis proves that using the block sparsity in AIC can reduce the restricted isometric constant, increase the reconstruction probability and reduce the sub -sampling rate. Simulation results show that the proposed model can complete sub -sampling and reconstruction for multi-narrowband signals. This paper extends the application range of AIC from the finite information rate signal to the multi-narrowband signals by using the potential relevance of support sets. The proposed receiving model has low complexity and is easy to implement, which can promote the application of CS theory in the radar receiver to reduce the burden of analog-to digital convertor (ADC) and solve bandwidth limitations of ADC. 展开更多
关键词 compressive sensing (CS) block sparsity analog-to-information convertor (aic) multi-narrowband signals
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模拟-信息转换器研究进展 被引量:14
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作者 张弓 文方青 +2 位作者 陶宇 刘苏 贲德 《系统工程与电子技术》 EI CSCD 北大核心 2015年第2期229-238,共10页
随着未来宽带、超宽带通信技术的发展,现有以传统奈奎斯特采样定理为基础的信号的采集、传输、存储和处理系统将面临严峻的挑战,模拟-信息转换器(analog-to-information convertor,AIC)将可能是这些挑战的有效解决途径。AIC是近年来国... 随着未来宽带、超宽带通信技术的发展,现有以传统奈奎斯特采样定理为基础的信号的采集、传输、存储和处理系统将面临严峻的挑战,模拟-信息转换器(analog-to-information convertor,AIC)将可能是这些挑战的有效解决途径。AIC是近年来国内外研究的热点,其以压缩感知原理为理论基础,突破传统的奈奎斯特采样定理的约束,以远低于奈奎斯特速率对信号进行采样,并确保能准确重构出原始信号,是稀疏信号的有效获取方法。以稀疏信号采集为主线,综述了近年来AIC设计与实现的研究进展,分析了不同方案在稀疏信号获取方面的优势与不足,描述了国内外的相关研究进展,并对未来AIC可能的发展方向进行了展望。 展开更多
关键词 模拟信息转换器 压缩感知 稀疏信号
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压缩感知在传感器节点信息采集中的应用 被引量:7
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作者 赵磊 俞阿龙 +1 位作者 徐冬平 孙诗裕 《传感器与微系统》 CSCD 2016年第8期141-143,147,共4页
随着无线传感器网络的快速发展,海量数据的处理、存储与传输给传统的以高速ADC和存储通信设备带来了巨大的压力。由于传感器节点采集的感知数据具有时间相关性,本文提出基于压缩感知理论的采样压缩方法,其打破了传统奈奎斯特采样定理的... 随着无线传感器网络的快速发展,海量数据的处理、存储与传输给传统的以高速ADC和存储通信设备带来了巨大的压力。由于传感器节点采集的感知数据具有时间相关性,本文提出基于压缩感知理论的采样压缩方法,其打破了传统奈奎斯特采样定理的限制,在前端只需远低于奈奎斯特采样频率采样信号就可以完成对原始信号的精确重构,并构造了基于压缩感知的模拟信息转换器(AIC)模型。最后通过以Matlab为平台进行实验仿真,结果表明:该模型可以用较少的观测值即可精确重构稀疏信号,并且其重构精度与观测数M、稀疏度K有关。 展开更多
关键词 压缩感知 模拟信息转换器 稀疏信号
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多相随机子采样FFT模拟信息转换器 被引量:2
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作者 金磊 黄建军 高国星 《信号处理》 CSCD 北大核心 2016年第4期457-462,共6页
模拟信息转换器是实现稀疏信号压缩感知的一种装置,常用的主要结构是随机解调下采样,但是通常存在采样恢复精度低以及压缩率不高的问题。为提高压缩率及采样恢复精度,本文提出了一种多相随机子采样FFT模拟信息转换器实现方法,该模拟信... 模拟信息转换器是实现稀疏信号压缩感知的一种装置,常用的主要结构是随机解调下采样,但是通常存在采样恢复精度低以及压缩率不高的问题。为提高压缩率及采样恢复精度,本文提出了一种多相随机子采样FFT模拟信息转换器实现方法,该模拟信息转换器由多相分频移相器、伪随机数发生器、多路并行低速ADC以及累加器组成。该方法利用信号在频域循环卷积后下采样等效于信号随机子采样FFT的特点,实现对信号的压缩采样,能有效提高信号压缩率及采样恢复精度,且结构简单、易于实现。仿真实验验证了此方法的有效性。 展开更多
关键词 信息处理技术 压缩感知 模拟信息转换器 多相随机采样 子采样FFT
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Adaptive block greedy algorithms for receiving multi-narrowband signal in compressive sensing radar reconnaissance receiver
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作者 ZHANG Chaozhu XU Hongyi JIANG Haiqing 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第6期1158-1169,共12页
This paper extends the application of compressive sensing(CS) to the radar reconnaissance receiver for receiving the multi-narrowband signal. By combining the concept of the block sparsity, the self-adaption methods, ... This paper extends the application of compressive sensing(CS) to the radar reconnaissance receiver for receiving the multi-narrowband signal. By combining the concept of the block sparsity, the self-adaption methods, the binary tree search,and the residual monitoring mechanism, two adaptive block greedy algorithms are proposed to achieve a high probability adaptive reconstruction. The use of the block sparsity can greatly improve the efficiency of the support selection and reduce the lower boundary of the sub-sampling rate. Furthermore, the addition of binary tree search and monitoring mechanism with two different supports self-adaption methods overcome the instability caused by the fixed block length while optimizing the recovery of the unknown signal.The simulations and analysis of the adaptive reconstruction ability and theoretical computational complexity are given. Also, we verify the feasibility and effectiveness of the two algorithms by the experiments of receiving multi-narrowband signals on an analogto-information converter(AIC). Finally, an optimum reconstruction characteristic of two algorithms is found to facilitate efficient reception in practical applications. 展开更多
关键词 compressive sensing(CS) adaptive greedy algorithm block sparsity analog-to-information convertor(aic) multinarrowband signal
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