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一种单检测器可压缩成像系统设计 被引量:1
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作者 刘红 李鹏飞 +1 位作者 方红 程鸿 《计算机工程》 CAS CSCD 北大核心 2009年第18期278-279,共2页
采用基于亚高斯随机投影的图像重建方法,得到以稀疏矩阵、非常稀疏投影矩阵作为测量矩阵的仿真结果,设计一种基于数字微镜装置阵列的可压缩成像系统,给出系统结构、各模块之间的联系和核心模块的设计方法。为满足系统对高频弱光信号检... 采用基于亚高斯随机投影的图像重建方法,得到以稀疏矩阵、非常稀疏投影矩阵作为测量矩阵的仿真结果,设计一种基于数字微镜装置阵列的可压缩成像系统,给出系统结构、各模块之间的联系和核心模块的设计方法。为满足系统对高频弱光信号检测的需要,设计单检测器弱光信号检测模块,实验结果证明该方案速度快、有较高的精度和适应性。 展开更多
关键词 可压缩传感理论 亚高斯 可压缩成像系统
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Compressive Sensing Based Wireless Localization in Indoor Scenarios 被引量:3
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作者 Cui Qimei Deng Jingang Zhang Xuefei 《China Communications》 SCIE CSCD 2012年第4期1-12,共12页
The sparse nature of location finding in the spatial domain makes it possible to exploit the Compressive Sensing (CS) theory for wireless location.CS-based location algorithm can largely reduce the number of online me... The sparse nature of location finding in the spatial domain makes it possible to exploit the Compressive Sensing (CS) theory for wireless location.CS-based location algorithm can largely reduce the number of online measurements while achieving a high level of localization accuracy,which makes the CS-based solution very attractive for indoor positioning.However,CS theory offers exact deterministic recovery of the sparse or compressible signals under two basic restriction conditions of sparsity and incoherence.In order to achieve a good recovery performance of sparse signals,CS-based solution needs to construct an efficient CS model.The model must satisfy the practical application requirements as well as following theoretical restrictions.In this paper,we propose two novel CS-based location solutions based on two different points of view:the CS-based algorithm with raising-dimension pre-processing and the CS-based algorithm with Minor Component Analysis (MCA).Analytical studies and simulations indicate that the proposed novel schemes achieve much higher localization accuracy. 展开更多
关键词 wireless localization fingerprinting compressive sensing minor component analysis received signal strength
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