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Modified MUSIC estimation for correlated signals with compressive sampling arrays 被引量:2
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作者 Yan Jing Naizhang Feng Yi Shen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第5期755-760,共6页
This paper addresses the issue of the direction of arrival (DOA) estimation under the compressive sampling (CS) framework. A novel approach, modified multiple signal classification (MMUSIC) based on the CS array... This paper addresses the issue of the direction of arrival (DOA) estimation under the compressive sampling (CS) framework. A novel approach, modified multiple signal classification (MMUSIC) based on the CS array (CSA-MMUSIC), is proposed to resolve the DOA estimation of correlated signals and two closely adjacent signals. By using two random CS matrices, a large size array is compressed into a small size array, which effectively reduces the number of the front end circuit. The theoretical analysis demonstrates that the proposed approach has the advantages of low computational complexity and hardware structure compared to other MMUSIC approaches. Simulation results show that CSAMMUSIC can possess similar angular resolution as MMUSIC. 展开更多
关键词 direction of arrival (DOA) compressive sampling array (csA) modified multiple signal classification (MMUSIC) correlated signal.
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Moving object detection in framework of compressive sampling 被引量:1
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作者 Jing Li JunzhengWang Wei Shen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2010年第5期740-745,共6页
Compressive sensing is a revolutionary idea proposed recently to achieve much lower sampling rate for signals.In the image application with limited resources the camera data can be stored and processed in compressed f... Compressive sensing is a revolutionary idea proposed recently to achieve much lower sampling rate for signals.In the image application with limited resources the camera data can be stored and processed in compressed form.An algorithm for moving object and region detection in video using a compressive sampling is developed.The algorithm estimates motion information of the moving object and regions in the video from the compressive measurements of the current image and background scene.The algorithm does not perform inverse compressive operation to obtain the actual pixels of the current image nor the estimated background.This leads to a computationally efficient method and a system compared with the existing motion estimation methods.The experimental results show that the sampling rate can reduce to 25% without sacrificing performance. 展开更多
关键词 compressive sampling compressive measurements moving object detection.
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Cramer-Rao bounds for the joint delay-Doppler estimation of compressive sampling pulse-Doppler radar
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作者 CHEN Shengyao XI Feng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第1期58-66,共9页
Time-delay and Doppler shift estimation is a basic task for pulse-Doppler radar processing. For low-rate sampling of echo signals, several kinds of compressive sampling(CS) pulse-Doppler(CSPD) radar are developed with... Time-delay and Doppler shift estimation is a basic task for pulse-Doppler radar processing. For low-rate sampling of echo signals, several kinds of compressive sampling(CS) pulse-Doppler(CSPD) radar are developed with different analog-to-information conversion(AIC) systems. However, a unified metric is absent to evaluate their parameter estimation performance. Towards this end, this paper derives the deterministic Cramer-Rao bound(CRB)for the joint delay-Doppler estimation of CSPD radar to quantitatively analyze the estimate performance. Theoretical results reveal that the CRBs of both time-delays and Doppler shifts are inversely proportional to the received target signal-to-noise ratio(SNR), the number of transmitted pulses and the sampling rate of AIC systems. The main difference is that the CRB of Doppler shifts also lies on the coherent processing interval. Numerical experiments validate these theoretical results. They also show that the structure of the AIC systems has weak influence on the CRBs, which implies that the AIC structures can be flexibly selected for the implementation of CSPD radar. 展开更多
关键词 compressive sampling(cs) delay-Doppler estimation Cramer-Rao bound(CRB)
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Compressive sampling and reconstruction in shift-invariant spaces associated with the fractional Gabor transform
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作者 Qiang Wang Chen Meng Cheng Wang 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2022年第6期976-994,共19页
In this paper,we propose a compressive sampling and reconstruction system based on the shift-invariant space associated with the fractional Gabor transform.With this system,we aim to achieve the subNyquist sampling an... In this paper,we propose a compressive sampling and reconstruction system based on the shift-invariant space associated with the fractional Gabor transform.With this system,we aim to achieve the subNyquist sampling and accurate reconstruction for chirp-like signals containing time-varying characteristics.Under the proposed scheme,we introduce the fractional Gabor transform to make a stable expansion for signals in the joint time-fractional-frequency domain.Then the compressive sampling and reconstruction system is constructed under the compressive sensing and shift-invariant space theory.We establish the reconstruction model and propose a block multiple response extension of sparse Bayesian learning algorithm to improve the reconstruction effect.The reconstruction error for the proposed system is analyzed.We show that,with considerations of noises and mismatches,the total error is bounded.The effectiveness of the proposed system is verified by numerical experiments.It is shown that our proposed system outperforms the other systems state-of-the-art. 展开更多
关键词 compressive sampling RECONSTRUCTION Shift-invariant space Fractional gabor transform Chirp-like signals
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北京市环境气溶胶中^(137)Cs放射性水平测量
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作者 甘睿琳 杜娟 +2 位作者 刘陆 高鹏 马秀凤 《核化学与放射化学》 北大核心 2025年第2期163-168,I0003,共7页
随着我国核能与核技术应用的发展,放射化学分析在环境质量监测、核设施周边辐射环境监测、核与辐射事故应急监测等方面发挥着越来越重要的作用。^(137)Cs是典型的人工放射性核素,主要由全球大气层核试验、核事故和核技术应用等活动产生... 随着我国核能与核技术应用的发展,放射化学分析在环境质量监测、核设施周边辐射环境监测、核与辐射事故应急监测等方面发挥着越来越重要的作用。^(137)Cs是典型的人工放射性核素,主要由全球大气层核试验、核事故和核技术应用等活动产生,其通过食物链进入人体后会均匀地分布至全身,形成内照射,因此监测环境介质中^(137)Cs放射性水平具有重要意义。本工作采用放化分析法对北京市环境气溶胶样品进行了前处理,在灰化-浸取后增加了除210Bi的步骤,减小了210Bi对气溶胶中^(137)Cs活度浓度测量的影响,并将放化分析法测量结果与γ能谱法测量结果进行了对比,验证了放化分析法的可靠性,进而采用放化分析法对北京市环境气溶胶中^(137)Cs放射性水平进行了分析。分析结果表明:2016—2023年北京市环境气溶胶中^(137)Cs活度浓度范围为(0.477±0.098)^(7.05±0.14)μBq/m^(3),均值为(1.46±1.26)μBq/m^(3),处于全国气溶胶监测正常结果范围内;此外,结合^(137)Cs监测结果与气象条件分析,沙尘天气导致的地表再悬浮可能会造成气溶胶中^(137)Cs活度浓度升高,后续有必要进行长期跟踪监测,深入开展沙尘天气与气溶胶中^(137)Cs活度浓度水平的相关性研究。 展开更多
关键词 放化分析法 气溶胶 ^(137)cs
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基于MCS-SBL算法的配电网故障定位方法 被引量:2
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作者 周群 刘梓琳 +2 位作者 冷敏瑞 印月 何川 《电力系统及其自动化学报》 CSCD 北大核心 2024年第3期30-38,共9页
配电网拓扑结构复杂,传统方法往往需要大量测点信息且难以实现快速有效的故障定位,本文提出基于少量测点信息的故障定位方法。首先,利用等效原理建立一个欠定的故障节点电压方程;其次,利用多重测量向量模型的贝叶斯压缩感知算法求解方程... 配电网拓扑结构复杂,传统方法往往需要大量测点信息且难以实现快速有效的故障定位,本文提出基于少量测点信息的故障定位方法。首先,利用等效原理建立一个欠定的故障节点电压方程;其次,利用多重测量向量模型的贝叶斯压缩感知算法求解方程,根据重构稀疏电流矩阵的非零元素位置求解故障区域,实现故障定位;最后,在IEEE33节点配电系统上进行仿真实验,结果表明,所提方法仅需要少量测点的故障前后正序电压分量便可有效定位故障,计算速度较快,并且基本不受故障类型、过渡电阻的影响,同时适用于单故障和多重故障的场景,具有较强的抗噪能力。 展开更多
关键词 配电网 故障定位 多重测量向量模型 稀疏电流 压缩感知
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Experimental and numerical simulation of loading rate effects on failure and strain energy characteristics of coal-rock composite samples 被引量:28
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作者 MAQing TAN Yun-liang +3 位作者 LIU Xue-sheng ZHAO Zeng-hui FAN De-yuan PUREV Lkhamsuren 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第10期3207-3222,共16页
The deformation and failure of coal and rock is energy-driving results according to thermodynamics.It is important to study the strain energy characteristics of coal-rock composite samples to better understand the def... The deformation and failure of coal and rock is energy-driving results according to thermodynamics.It is important to study the strain energy characteristics of coal-rock composite samples to better understand the deformation and failure mechanism of of coal-rock composite structures.In this research,laboratory tests and numerical simulation of uniaxial compressions of coal-rock composite samples were carried out with five different loading rates.The test results show that strength,deformation,acoustic emission(AE)and energy evolution of coal-rock composite sample all have obvious loading rate effects.The uniaxial compressive strength and elastic modulus increase with the increase of loading rate.And with the increase of loading rate,the AE energy at the peak strength of coal-rock composites increases first,then decreases,and then increases.With the increase of loading rate,the AE cumulative count first decreases and then increases.And the total absorption energy and dissipation energy of coal-rock composite samples show non-linear increasing trends,while release elastic strain energy increases first and then decreases.The laboratory experiments conducted on coal-rock composite samples were simulated numerically using the particle flow code(PFC).With careful selection of suitable material constitutive models for coal and rock,and accurate estimation and calibration of mechanical parameters of coal-rock composite sample,it was possible to obtain a good agreement between the laboratory experimental and numerical results.This research can provide references for understanding failure of underground coalrock composite structure by using energy related measuring methods. 展开更多
关键词 coal-rock composite samples uniaxial compression loading rate acoustic emission energy evolution
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Compressive sensing based multiuser detector for massive MBM MIMO uplink 被引量:3
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作者 SONG Wei WANG Wenzheng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第1期19-27,共9页
Media based modulation(MBM)is expected to be a prominent modulation scheme,which has access to the high data rate by using radio frequency(RF)mirrors and fewer transmit antennas.Associated with multiuser multiple inpu... Media based modulation(MBM)is expected to be a prominent modulation scheme,which has access to the high data rate by using radio frequency(RF)mirrors and fewer transmit antennas.Associated with multiuser multiple input multiple output(MIMO),the MBM scheme achieves better performance than other conventional multiuser MIMO schemes.In this paper,the massive MIMO uplink is considered and a conjunctive MBM transmission scheme for each user is employed.This conjunctive MBM transmission scheme gathers aggregate MBM signals in multiple continuous time slots,which exploits the structured sparsity of these aggregate MBM signals.Under this kind of scenario,a multiuser detector with low complexity based on the compressive sensing(CS)theory to gain better detection performance is proposed.This detector is developed from the greedy sparse recovery technique compressive sampling matching pursuit(CoSaMP)and exploits not only the inherently distributed sparsity of MBM signals but also the structured sparsity of multiple aggregate MBM signals.By exploiting these sparsity,the proposed CoSaMP based multiuser detector achieves reliable detection with low complexity.Simulation results demonstrate that the proposed CoSaMP based multiuser detector achieves better detection performance compared with the conventional methods. 展开更多
关键词 media based modulation(MBM) radio frequency(RF)mirror compressive sensing(cs) multiple input multiple output(MIMO) multiuser detector compressive sampling matching pursuit(CoSaMP).
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Joint 2D DOA and Doppler frequency estimation for L-shaped array using compressive sensing 被引量:5
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作者 WANG Shixin ZHAO Yuan +3 位作者 LAILA Ibrahim XIONG Ying WANG Jun TANG Bin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第1期28-36,共9页
A joint two-dimensional(2D)direction-of-arrival(DOA)and radial Doppler frequency estimation method for the L-shaped array is proposed in this paper based on the compressive sensing(CS)framework.Revised from the conven... A joint two-dimensional(2D)direction-of-arrival(DOA)and radial Doppler frequency estimation method for the L-shaped array is proposed in this paper based on the compressive sensing(CS)framework.Revised from the conventional CS-based methods where the joint spatial-temporal parameters are characterized in one large scale matrix,three smaller scale matrices with independent azimuth,elevation and Doppler frequency are introduced adopting a separable observation model.Afterwards,the estimation is achieved by L1-norm minimization and the Bayesian CS algorithm.In addition,under the L-shaped array topology,the azimuth and elevation are separated yet coupled to the same radial Doppler frequency.Hence,the pair matching problem is solved with the aid of the radial Doppler frequency.Finally,numerical simulations corroborate the feasibility and validity of the proposed algorithm. 展开更多
关键词 electronic warfare L-shaped array joint parameter estimation L1-norm minimization Bayesian compressive sensing(cs) pair matching
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Robust signal recovery algorithm for structured perturbation compressive sensing 被引量:2
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作者 Youhua Wang Jianqiu Zhang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第2期319-325,共7页
It is understood that the sparse signal recovery with a standard compressive sensing(CS) strategy requires the measurement matrix known as a priori. The measurement matrix is, however, often perturbed in a practical... It is understood that the sparse signal recovery with a standard compressive sensing(CS) strategy requires the measurement matrix known as a priori. The measurement matrix is, however, often perturbed in a practical application.In order to handle such a case, an optimization problem by exploiting the sparsity characteristics of both the perturbations and signals is formulated. An algorithm named as the sparse perturbation signal recovery algorithm(SPSRA) is then proposed to solve the formulated optimization problem. The analytical results show that our SPSRA can simultaneously recover the signal and perturbation vectors by an alternative iteration way, while the convergence of the SPSRA is also analytically given and guaranteed. Moreover, the support patterns of the sparse signal and structured perturbation shown are the same and can be exploited to improve the estimation accuracy and reduce the computation complexity of the algorithm. The numerical simulation results verify the effectiveness of analytical ones. 展开更多
关键词 sparse signal recovery compressive sensing(cs structured matrix perturbation
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Degradation algorithm of compressive sensing
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作者 Chunhui Zhao Wei Liu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2011年第5期832-839,共8页
The compressive sensing (CS) theory allows people to obtain signal in the frequency much lower than the requested one of sampling theorem. Because the theory is based on the assumption of that the location of sparse... The compressive sensing (CS) theory allows people to obtain signal in the frequency much lower than the requested one of sampling theorem. Because the theory is based on the assumption of that the location of sparse values is unknown, it has many constraints in practical applications. In fact, in many cases such as image processing, the location of sparse values is knowable, and CS can degrade to a linear process. In order to take full advantage of the visual information of images, this paper proposes the concept of dimensionality reduction transform matrix and then se- lects sparse values by constructing an accuracy control matrix, so on this basis, a degradation algorithm is designed that the signal can be obtained by the measurements as many as sparse values and reconstructed through a linear process. In comparison with similar methods, the degradation algorithm is effective in reducing the number of sensors and improving operational efficiency. The algorithm is also used to achieve the CS process with the same amount of data as joint photographic exports group (JPEG) compression and acquires the same display effect. 展开更多
关键词 compressive sensing (cs dimensionality reduction transform matrix accuracy control matrix degradation algorithm joint photographic exports group (JPEG) compression.
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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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浸水煤体单轴压缩能量破坏机理及层理效应 被引量:1
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作者 刘小玲 张泽天 +4 位作者 张茹 曹志国 任利 孙紫琬 查尔晟 《工程科学与技术》 北大核心 2025年第1期189-200,共12页
煤矿地下水库煤柱坝体存在显著的浸水渐进灾变力学响应,揭示浸水煤体单轴压缩能量演化特性的层理效应对煤柱坝体设计优化及安全控制具有重要意义。采用岩石多轴加载力学试验系统TEST 60,开展垂直及平行两种层理在不同浸水时间(0、2、4、... 煤矿地下水库煤柱坝体存在显著的浸水渐进灾变力学响应,揭示浸水煤体单轴压缩能量演化特性的层理效应对煤柱坝体设计优化及安全控制具有重要意义。采用岩石多轴加载力学试验系统TEST 60,开展垂直及平行两种层理在不同浸水时间(0、2、4、16 d)下煤样的单轴压缩试验,获取浸水煤样单轴压缩全应力–应变曲线及物理力学参数,探究煤样单轴压缩加载全过程能量演化特征,分析不同层理浸水煤样单轴压缩能量演化机理。结果表明:1)长时间浸水后,垂直层理和平行层理煤样均发生了明显的水软化,抗压强度明显变小,且各能量指标均较未浸水时有明显降低;浸水16 d的平行层理、垂直层理煤样峰值应力处对应的总能量分别为未浸水时的56%、53%。2)浸水4 d内,平行层理煤样受水软化作用的影响不显著;垂直层理煤样的抗压强度先增加后降低,弹性能变化趋势与抗压强度保持一致,总能量、耗散能随着浸水时间的增加逐渐降低。3)相同浸水时间下,垂直层理煤样的强度及变形破坏过程中的各能量指标均高于平行层理煤样;未浸水垂直层理煤样的峰值总能量约为平行层理的2倍。4)由于不同层理方向煤样的吸水能力及其破坏面与层理面的关系有差异,导致在短时间浸水作用后不同层理煤样单轴压缩能量演化存在差异。研究结果丰富了已有对浸水煤体受载破坏过程能量演化规律的认识,为指导煤矿地下水库的安全建设与稳定运行提供参考和依据。 展开更多
关键词 浸水时间 层理 煤样 单轴压缩 能量演化
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用^(137)Cs法研究农耕地坡面土壤侵蚀空间分布特征初报 被引量:11
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作者 杨明义 田均良 +1 位作者 刘普灵 石辉 《水土保持研究》 CSCD 1997年第2期96-99,112,共5页
运用(137)~Cs示踪法和网格点采样法对陕北典型的农耕地坡面的土壤侵蚀空间分布特征进行了研究,发现在坡脊和坡沟,随坡长的增长,137Cs含量分布呈增加、减少、再增加的波动趋势.而侧坡则呈相反的波动趋势;并利用新的公式计算了农耕... 运用(137)~Cs示踪法和网格点采样法对陕北典型的农耕地坡面的土壤侵蚀空间分布特征进行了研究,发现在坡脊和坡沟,随坡长的增长,137Cs含量分布呈增加、减少、再增加的波动趋势.而侧坡则呈相反的波动趋势;并利用新的公式计算了农耕地的侵蚀模数[11570t/(km2·a)]。 展开更多
关键词 农耕地 坡面 土壤侵蚀 空间分布
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基于CS-MUSIC算法的DOA估计 被引量:16
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作者 吴小川 邓维波 杨强 《系统工程与电子技术》 EI CSCD 北大核心 2013年第9期1821-1824,共4页
多重信号分类(multiple signal classification,MUSIC)方法在少快拍数或者存在相干信源的情况下不能准确估计信号的波达方向,而压缩感知(compressive sensing,CS)方法在多快拍数或低信噪比情况下分辨性能不稳定,估计准确率受限。提出了... 多重信号分类(multiple signal classification,MUSIC)方法在少快拍数或者存在相干信源的情况下不能准确估计信号的波达方向,而压缩感知(compressive sensing,CS)方法在多快拍数或低信噪比情况下分辨性能不稳定,估计准确率受限。提出了一种基于CS的MUSIC方法,简称CS-MUSIC,该方法针对不同的快拍数,建立二者之间的联系,构造出新的正交空间,获得尖锐的谱峰。理论分析和仿真结果表明,所提方法在不同快拍数条件下,具有较高的估计精度,克服了传统方法存在的缺陷,并且对噪声具有鲁棒性。 展开更多
关键词 压缩感知 波达方向估计 基于压缩感知的多重信号分类 同时正交匹配追踪
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基于压缩感知的非侵入式负荷监测
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作者 袁博 葛少云 +3 位作者 刘洪 冯喜春 刘国平 魏孟举 《中国电机工程学报》 北大核心 2025年第3期1205-1218,I0034,共15页
压缩感知(compressed sensing,CS)具有压缩简单、更适用于监测环境等特点,成为电网中解决监测数据海量化问题的重要方式,但其在非侵入式负荷监测(non-intrusive load monitoring,NILM)中的应用研究尚未真正开展。为适应传统NILM中时空... 压缩感知(compressed sensing,CS)具有压缩简单、更适用于监测环境等特点,成为电网中解决监测数据海量化问题的重要方式,但其在非侵入式负荷监测(non-intrusive load monitoring,NILM)中的应用研究尚未真正开展。为适应传统NILM中时空密集采集、高频信息采集等需求,该文首次深入探索基于压缩感知的非侵入式负荷监测方法。首先,分析负荷原始信号及其特征值的类型,证明NILM中的CS可用性;然后,分别基于场景识别、数学优化模型和事件探测,提出3种基于CS的NILM框架及其实现流程;在此基础上,针对框架中需要解决的关键问题,提出适用的特征提取方法、事件探测方法、数学优化模型、CS三要素设计的具体流程。实验表明,该文提出的3种框架及其关键问题解决方法均具有合理性,负荷识别准确率均接近90%、负荷分解准确率达92%以上、重构信噪比大于70 dB,满足相关领域要求。 展开更多
关键词 压缩感知 基本框架 事件探测 特征提取 数学模型 可用性证明 cs三要素
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基于Jitter采样的压缩感知地震勘探数据重构
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作者 张帅 杨润海 +5 位作者 姜金钟 张演 郑定昌 邓月飞 杨润萍 王志豪 《地震研究》 北大核心 2025年第1期71-79,共9页
受野外复杂环境影响,地震勘探采集的地震数据往往不完整且有坏道。为提高原始地震数据的完整度,基于压缩感知稀疏反演理论,构建了一种基于Jitter采样的压缩感知地震勘探数据重构方法。从采样模型和采样信号频谱分析等方面详细对比3种采... 受野外复杂环境影响,地震勘探采集的地震数据往往不完整且有坏道。为提高原始地震数据的完整度,基于压缩感知稀疏反演理论,构建了一种基于Jitter采样的压缩感知地震勘探数据重构方法。从采样模型和采样信号频谱分析等方面详细对比3种采样方法的优缺点。通过合成地震数据测试,从信噪比、均方根误差、互相关系数3个方面进行重建效果综合评价并应用于实际数据中。结果表明:与传统随机采样方法相比,基于Jitter采样方法重构前后的地震数据形态振幅一致性更强,信噪比更高、误差更小、互相关系数更高。实际数据应用结果显示:重构后的叠后地震成像数据同相轴清晰,连续性更强,振幅一致性强,对噪声压制较好。这表明Jitter采样在保持随机性采样的同时,可以有效控制采样间隔,解决了采样点过于分散或者过于集中的问题,更有利于数据的恢复。综上,Jitter采样方法能够从稀疏不均匀数据中重建出密集规则化的地震数据,可以为后续的高质量偏移成像、速度建模等研究提供完整地震数据支撑。 展开更多
关键词 压缩感知 Jitter采样 地震勘探 数据重建
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确定^137Cs背景值所需的采样点数与采样面积 被引量:4
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作者 刘志强 杨明义 +1 位作者 刘普灵 田均良 《核农学报》 CAS CSCD 北大核心 2009年第3期482-486,共5页
137Cs背景值的确定是利用核示踪技术研究土壤侵蚀的前提和根本,直接关系到侵蚀速率计算的准确与否。而大部分研究对137Cs背景值的确定均采取随机采样,没有统一的采样点数与确定的采样面积。本研究利用网格加密采样法,对未扰动地和长期... 137Cs背景值的确定是利用核示踪技术研究土壤侵蚀的前提和根本,直接关系到侵蚀速率计算的准确与否。而大部分研究对137Cs背景值的确定均采取随机采样,没有统一的采样点数与确定的采样面积。本研究利用网格加密采样法,对未扰动地和长期耕种且未平整的农耕地各两块样地的137Cs背景值空间变异进行了分析,结果表明:在未扰动地与农耕地采样地块,137Cs采样点数与背景值空间变异系数都存在指数回归关系;在未扰动地块137Cs背景值存在较大空间变异性,且随着网格面积的扩大137Cs空间变异系数表现为增加趋势,在0.25m2范围内选取最少11个样点才能满足试验精度;在农耕地采样地块,因长期的耕种作用使得137Cs在耕层中混合相对均匀,137Cs背景值空间变异性显著变小,最少选取7个样点就能满足试验精度,且不受采样面积的影响。 展开更多
关键词 ^137cs背景值 网格采样 空间变异
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一种多子阵合成孔径声纳CS成像算法 被引量:5
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作者 刘维 张春华 +1 位作者 刘纪元 刘兴华 《声学技术》 CSCD 北大核心 2008年第5期636-641,共6页
由于方位向采样不均匀,已有的频域算法如CS算法(Chirp Scaling)等不能直接应用于多子阵合成孔径声纳成像,提出了一种可用于方位向不均匀采样多子阵合成孔径声纳的CS成像算法。此方法利用多子阵合成孔径声纳系统等间隔布阵和匀速直线运... 由于方位向采样不均匀,已有的频域算法如CS算法(Chirp Scaling)等不能直接应用于多子阵合成孔径声纳成像,提出了一种可用于方位向不均匀采样多子阵合成孔径声纳的CS成像算法。此方法利用多子阵合成孔径声纳系统等间隔布阵和匀速直线运动的特点,将方位向不均匀采样的傅立叶变换分解为若干均匀采样的傅立叶变换,从而可以利用FFT提高计算效率。成像结果及分析表明,此方法可以很好应用于多子阵合成孔径声纳成像,并保持了标准CS算法快速高效的特点。 展开更多
关键词 合成孔径声纳 多子阵 不均匀采样 cs算法
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东海沿岸海底沉积物中的^(137)Cs、^(210)Pb分布及其沉积环境解释 被引量:39
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作者 夏小明 谢钦春 +2 位作者 李炎 李伯根 冯应俊 《东海海洋》 1999年第1期20-27,共8页
通过对东海沿岸不同海区8个沉积柱样的137Cs或210Pb剖面的观测,运用137Cs时标法和210Pb过剩法估算了近几十年来的平均沉积速率。
关键词 东海沿岸 沉积柱样 沉积环境 海底 沉积物 铯137
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