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Micro-Doppler feature extraction of micro-rotor UAV under the background of low SNR 被引量:5
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作者 HE Weikun SUN Jingbo +1 位作者 ZHANG Xinyun LIU Zhenming 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2022年第6期1127-1139,共13页
Micro-Doppler feature extraction of unmanned aerial vehicles(UAVs)is important for their identification and classification.Noise and the motion state of the UAV are the main factors that may affect feature extraction ... Micro-Doppler feature extraction of unmanned aerial vehicles(UAVs)is important for their identification and classification.Noise and the motion state of the UAV are the main factors that may affect feature extraction and estimation precision of the micro-motion parameters.The spectrum of UAV echoes is reconstructed to strengthen the micro-motion feature and reduce the influence of the noise on the condition of low signal to noise ratio(SNR).Then considering the rotor rate variance of UAV in the complex motion state,the cepstrum method is improved to extract the rotation rate of the UAV,and the blade length can be intensively estimated.The experiment results for the simulation data and measured data show that the reconstruction of the spectrum for the UAV echoes is helpful and the relative mean square root error of the rotating speed and blade length estimated by the proposed method can be improved.However,the computation complexity is higher and the heavier computation burden is required. 展开更多
关键词 micro-rotor unmanned aerial vehicle(UAV) low signal to noise ratio(SNR) micro-doppler feature extraction parameter estimation
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Parity recognition of blade number and manoeuvre intention classification algorithm of rotor target based on micro-Doppler features using CNN 被引量:5
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作者 WANG Wantian TANG Ziyue +1 位作者 CHEN Yichang SUN Yongjian 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第5期884-889,共6页
This paper proposes a parity recognition of blade number and manoeuvre intention classification algorithm of rotor target based on the convolutional neural network(CNN) using micro Doppler features. Firstly, the time-... This paper proposes a parity recognition of blade number and manoeuvre intention classification algorithm of rotor target based on the convolutional neural network(CNN) using micro Doppler features. Firstly, the time-frequency spectrograms are acquired from the radar echo by the short-time Fourier transform.Secondly, based on the obtained spectrograms, a seven-layer CNN architecture is built to recognize the blade-number parity and classify the manoeuvre intention of the rotor target. The constructed architecture contains a leaky rectified linear unit and a dropout layer to accelerate the convergence of the architecture and avoid over-fitting. Finally, the spectrograms of the datasets are divided into three different ratios, i.e., 20%, 33% and 50%,and the cross validation is used to verify the effectiveness of the constructed CNN architecture. Simulation results show that, on the one hand, as the ratio of training data increases, the recognition accuracy of parity and manoeuvre intention is improved at the same signal-to-noise ratio(SNR);on the other hand, the proposed algorithm also has a strong robustness: the accuracy can still reach 90.72% with an SNR of – 6 dB. 展开更多
关键词 micro-doppler convolutional neural network(CNN) parity recognition of blade number manoeuvre intention classification
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Modeling simulation and experiment of micro-Doppler signature of precession 被引量:2
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作者 Hongwei Gao Lianggui Xie Shuliang Wen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2010年第4期544-549,共6页
Spatial precession is a special micro-motion of the spinning-directional target, and the micro-Doppler signature of the cone-shaped target with precession is studied. The micro-motion model of precession is built firs... Spatial precession is a special micro-motion of the spinning-directional target, and the micro-Doppler signature of the cone-shaped target with precession is studied. The micro-motion model of precession is built first, and then the micro-Doppler model is developed based on the proposed concept of micro-motion ma- trix, by which the theoretical formula of micro-Doppler signature of precession is derived. In order to further approach to the actual case, the occlusion effect is firstly considered in micro-Doppler, and the simulated result with occlusion effect is well in accordance with the measured result in microwave anechoic chamber, which suggests that the micro-motion model and micro-Doppler model of precession are both valid. 展开更多
关键词 PRECESSION micro-doppler micro-motion matrix occlusion effect.
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Parameter estimation for rigid body after micro-Doppler removal based on L-statistics in the radar analysis 被引量:2
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作者 Yong Wang Jian Kang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2015年第3期457-467,共11页
In traditional inverse synthetic aperture radar (ISAR) imaging of moving targets with rotational parts, the micro-Doppler (m-D) effects caused by the rotational parts influence the quality of the radar images. Rec... In traditional inverse synthetic aperture radar (ISAR) imaging of moving targets with rotational parts, the micro-Doppler (m-D) effects caused by the rotational parts influence the quality of the radar images. Recently, L. Stankovic proposed an m-D removal method based on L-statistics, which has been proved effective and simple. The algorithm can extract the m-D effects according to different behaviors of signals induced by rotational parts and rigid bodies in time-frequency (T-F) domain. However, by removing m-D effects, some useful short time Fourier transform (STFT) samples of rigid bodies are also extracted, which induces the side lobe problem of rigid bodies. A parameter estimation method for rigid bodies after m-D removal is proposed, which can accurately re- cover rigid bodies and avoid the side lobe problem by only using m-D removal. Simulations are given to validate the effectiveness of the proposed method. 展开更多
关键词 parameter estimation L-STATISTICS micro-doppler (m-D) radar imaging.
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DETECTION ON MICRO-DOPPLER EFFECT BASED ON LASER COHERENT RADAR 被引量:3
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作者 SunYang ZhangJun 《Journal of Electronics(China)》 2012年第1期56-61,共6页
A laser coherent detection system of 1550 nm wavelength was presented, and experimen- tal research on detecting micro-Doppler effect in a dynamic target was developed. In the study, the return signal in the time domai... A laser coherent detection system of 1550 nm wavelength was presented, and experimen- tal research on detecting micro-Doppler effect in a dynamic target was developed. In the study, the return signal in the time domain is decomposed into a set of components in different wavelet scales by multi-resolution wavelet analysis, and the components are associated with the vibrational motions in a target. Then micro-Doppler signatures are extracted by applying the reconstruction. During the course of the final data processing frequency analysis and time-frequency analysis are applied to analyze the vibrationM signals and estimate the motion parameters successfully. The experimental results indicate that the system can effectively detect micro-Doppler information in a moving target, and the tiny vibrational signatures also can be acquired effectively by wavelet multi-resolution analy- sis and time-frequency analysis. 展开更多
关键词 micro-doppler effect Laser coherent radar Multi-resolution analysis Time-frequencyanalysis
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Automatic recognition of sonar targets using feature selection in micro-Doppler signature 被引量:2
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作者 Abbas Saffari Seyed-Hamid Zahiri Mohammad Khishe 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2023年第2期58-71,共14页
Currently,the use of intelligent systems for the automatic recognition of targets in the fields of defence and military has increased significantly.The primary advantage of these systems is that they do not need human... Currently,the use of intelligent systems for the automatic recognition of targets in the fields of defence and military has increased significantly.The primary advantage of these systems is that they do not need human participation in target recognition processes.This paper uses the particle swarm optimization(PSO)algorithm to select the optimal features in the micro-Doppler signature of sonar targets.The microDoppler effect is referred to amplitude/phase modulation on the received signal by rotating parts of a target such as propellers.Since different targets'geometric and physical properties are not the same,their micro-Doppler signature is different.This Inconsistency can be considered a practical issue(especially in the frequency domain)for sonar target recognition.Despite using 128-point fast Fourier transform(FFT)for the feature extraction step,not all extracted features contain helpful information.As a result,PSO selects the most optimum and valuable features.To evaluate the micro-Doppler signature of sonar targets and the effect of feature selection on sonar target recognition,the simplest and most popular machine learning algorithm,k-nearest neighbor(k-NN),is used,which is called k-PSO in this paper because of the use of PSO for feature selection.The parameters measured are the correct recognition rate,reliability rate,and processing time.The simulation results show that k-PSO achieved a 100%correct recognition rate and reliability rate at 19.35 s when using simulated data at a 15 dB signal-tonoise ratio(SNR)angle of 40°.Also,for the experimental dataset obtained from the cavitation tunnel,the correct recognition rate is 98.26%,and the reliability rate is 99.69%at 18.46s.Therefore,the k-PSO has an encouraging performance in automatically recognizing sonar targets when using experimental datasets and for real-world use. 展开更多
关键词 micro-doppler signature Automatic recognition Feature selection K-NN PSO
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Particle swarm optimization for rigid body reconstruction after micro-Doppler removal in radar analysis 被引量:2
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作者 LI Hongzhi WANG Yong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第3期488-499,共12页
The rotating micro-motion parts produce micro-Doppler(m-D)effects which severely influence the quality of inverse synthetic aperture radar(ISAR)imaging for complex moving targets.Recently,a method based on short-time ... The rotating micro-motion parts produce micro-Doppler(m-D)effects which severely influence the quality of inverse synthetic aperture radar(ISAR)imaging for complex moving targets.Recently,a method based on short-time Fourier transform(STFT)and L-statistics to remove m-D effects is proposed,which can separate the rigid body parts from interferences introduced by rotating parts.However,during the procedure of removing m-D parts,the useful data of the rigid body parts are also removed together with the m-D interferences.After summing the rest STFT samples,the result will be affected.A novel method is proposed to recover the missing values of the rigid body parts by the particle swarm optimization(PSO)algorithm.For PSO,each particle corresponds to a possible phase estimation of the missing values.The best particle is selected which has the minimal energy of the side lobes according to the best fitness value of particles.The simulation and measured data results demonstrate the effectiveness of the proposed method. 展开更多
关键词 micro-doppler(m-D) inverse synthetic aperture radar(ISAR) L-STATISTICS particle swarm optimization(PSO)
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Micro-Doppler Parameter Estimation Method Based on Compressed Sensing
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作者 Jiayun Chang Xiongjun Fu +1 位作者 Wen Jiang Min Xie 《Journal of Beijing Institute of Technology》 EI CAS 2019年第2期286-295,共10页
A micro-Doppler parameter estimation method based on compressed sensing theory is proposed in this paper.The micro-Doppler parameter estimation algorithm was improved for micro-motion targets with translation in this ... A micro-Doppler parameter estimation method based on compressed sensing theory is proposed in this paper.The micro-Doppler parameter estimation algorithm was improved for micro-motion targets with translation in this paper.Relatively ideal micro-Doppler parameter estimation results were obtained.The proposed micro-Doppler parameter estimation was compared with the traditional micro-Doppler parameter estimation algorithm.Requirements for return signal length were analyzed with this new algorithm and its performance was also analyzed in various environments with different SNR. 展开更多
关键词 FEATURE EXTRACTION compressed SENSING micro-doppler PARAMETER ESTIMATION
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Micro-Doppler effect testing technique for attitude of projectile in space flight
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作者 张万君 吴晓颖 +2 位作者 张晓炜 牛敏杰 冷雪冰 《Journal of Beijing Institute of Technology》 EI CAS 2013年第3期350-353,共4页
To measure projectile attitude in space flight, based on continuous wave (CW) radar, a new micro-Doppler effect testing technique is developed in this paper. It also establishes radar testing model for attitude of f... To measure projectile attitude in space flight, based on continuous wave (CW) radar, a new micro-Doppler effect testing technique is developed in this paper. It also establishes radar testing model for attitude of flying projectile and resolve micro-Doppler effect of projectile motion attitude. By distinguishing and geting attitude parameters such as micro-motion period, this technique can in- tuitively estimate the flight stability of projectile, and the validity of this technique is proved accord- ing to flight tests. 展开更多
关键词 attitude of projectile micro-doppler radar testing target micro-motion
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Convex Optimization-Based Rotation Parameter Estimation Using Micro-Doppler
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作者 Kyungwoo Yoo Joohwan Chun +1 位作者 Seungoh Yoo Chungho Ryu 《Journal of Electrical Engineering》 2016年第4期157-164,共8页
We present a novel algorithm that can determine rotation-related parameters of a target using FMCW (frequency modulated continuous wave) radars, not utilizing inertia information of the target. More specifically, th... We present a novel algorithm that can determine rotation-related parameters of a target using FMCW (frequency modulated continuous wave) radars, not utilizing inertia information of the target. More specifically, the proposed algorithm estimates the angular velocity vector of a target as a function of time, as well as the distances of scattering points in the wing tip from the rotation axis, just by analyzing Doppler spectrograms obtained from three or more radars. The obtained parameter values will be useful to classify targets such as hostile warheads or missiles for real-time operation, or to analyze the trajectory of targets under test for the instrumentation radar operation. The proposed algorithm is based on the convex optimization to obtain the rotation-related parameters. The performance of the proposed algorithm is assessed through Monte Carlo simulations. Estimation performance of the proposed algorithm depends on the target and radar geometry and improves as the number of iterations of the convex optimization steps increases. 展开更多
关键词 micro-doppler FMCW radar STFT (short-time Fourier transform) convex optimization rotation parameter.
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基于最近邻域的弹道多目标分辨及micro-Doppler提取 被引量:5
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作者 李靖卿 冯存前 +1 位作者 贺思三 梁志兵 《中国科学:信息科学》 CSCD 北大核心 2015年第12期1640-1650,共11页
针对尺寸相近的弹道多目标分辨及micro-Doppler提取问题,文中提出了一种新的基于"选择"的弹道多目标分辨及micro-Doppler提取方法.在滑动散射模型的基础上,根据弹道目标micro-Doppler变化率的变化趋势,首先对时频谱中各点的... 针对尺寸相近的弹道多目标分辨及micro-Doppler提取问题,文中提出了一种新的基于"选择"的弹道多目标分辨及micro-Doppler提取方法.在滑动散射模型的基础上,根据弹道目标micro-Doppler变化率的变化趋势,首先对时频谱中各点的最近邻域进行多尺度编码,通过分层处理实现多目标的分辨,然后对各分层区域进行方位编码序列配准,运用零点回溯的方法提取出目标的micro-Doppler信息.仿真结果表明,该方法能够有效地克服多散射点模型交叉区域对多目标分辨及曲线分离的干扰作用,适用于多种微动目标散射模型,且抗噪性好,较好地实现了弹道多目标分辨及micro-Doppler提取. 展开更多
关键词 多目标分辨 micro-doppler变化率 最近邻域 多尺度 编码 零点回溯
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Multiple walking human recognition based on radar micro-Doppler signatures 被引量:1
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作者 SUN ZhongSheng WANG Jun +3 位作者 ZHANG YaoTian SUN JinPing YUAN ChangShun BI YanXian 《Science China Chemistry》 SCIE EI CAS CSCD 2015年第12期173-185,共13页
The recognition of human movements based on radar m-D(micro-Doppler) signatures attracts great interest in the field of radar research on automatic target recognition. Because there are multiple frequency components o... The recognition of human movements based on radar m-D(micro-Doppler) signatures attracts great interest in the field of radar research on automatic target recognition. Because there are multiple frequency components overlapping seriously in the radar echoes from walking humans, it is a very difficult work to recognize walking humans based on radar echoes. In this paper, a recognition method of walking humans based on radar m-D signatures is proposed. In this method, the m-D spectrum is generated by generalized S transform first,and then the entropy segmentation is used to segment the interesting region from the original spectrum. Next,the m-D features are extracted from the m-D region. Lastly, the support vector machine is used to recognize different walking human targets. The simulation experiments considering two factors of height and velocity are also conducted to test the performance of this proposed method. 展开更多
关键词 RADAR micro-doppler walking human generalized S transform RECOGNITION
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基于动态模态分解的弹道目标平动补偿与微动特征提取方法 被引量:1
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作者 李开明 代肖楠 +2 位作者 张袁鹏 姚佳文 罗迎 《系统工程与电子技术》 北大核心 2025年第2期451-462,共12页
针对弹道目标平动导致微动特征难以准确提取的问题,提出一种基于动态模态分解(dynamic mode decomposition, DMD)的弹道目标平动补偿与微动特征提取方法。首先,在弹道目标微动回波建模的基础上,对目标的慢时间-距离像序列进行微多普勒(m... 针对弹道目标平动导致微动特征难以准确提取的问题,提出一种基于动态模态分解(dynamic mode decomposition, DMD)的弹道目标平动补偿与微动特征提取方法。首先,在弹道目标微动回波建模的基础上,对目标的慢时间-距离像序列进行微多普勒(micro-Doppler, m-D)特征曲线分离;其次,将分离后的数据向量移位堆叠构建为增广数据矩阵,并对其进行DMD;然后,利用分解后的模态幅值对各模态进行排序,结合损失函数等信息选取主要模态;同时,利用主要模态中的零频率模态完成弹道目标的平动补偿,从其他主要模态中提取出自旋频率和锥旋频率等微动特征信息;最后,对基于DMD的弹道目标平动补偿与微动特征提取方法进行性能分析与对比实验,验证了所提方法的可行性和稳健性。 展开更多
关键词 动态模态分解 弹道目标 微多普勒 平动补偿 特征提取
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旋翼无人机雷达回波特征分析与参数估计方法
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作者 刘鲁涛 谢良正 莫禹涵 《国防科技大学学报》 北大核心 2025年第2期202-211,共10页
“低、慢、小”无人机的泛滥给空域的飞行安全造成了严重威胁,准确分析无人机回波信号的特点对于非合作无人机的检测具有重要意义。根据旋翼无人机目标时域积分回波模型以及倒谱算法的原理,推导了回波信号的频域表达式和倒谱表达式,分... “低、慢、小”无人机的泛滥给空域的飞行安全造成了严重威胁,准确分析无人机回波信号的特点对于非合作无人机的检测具有重要意义。根据旋翼无人机目标时域积分回波模型以及倒谱算法的原理,推导了回波信号的频域表达式和倒谱表达式,分析了回波信号参数与频域和倒谱特征的对应关系,提出了一种针对无人机回波信号的参数估计方法并通过仿真与实测数据验证了此方法的有效性。结果表明,该方法可以更加准确地估计无人机回波信号的带宽和旋转频率,进而为无人机目标的探测与识别提供重要参考。 展开更多
关键词 旋翼无人机 微多普勒 倒谱 参数估计
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基于WGAN-div和CNN的毫米波雷达人体动作识别方法
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作者 李秋生 钟滢洁 《贵州师范大学学报(自然科学版)》 北大核心 2025年第5期23-33,共11页
针对基于毫米波雷达的人体动作识别数据集规模小导致的模型过拟合问题,提出一种基于Wasserstein散度生成对抗网络(WGAN-div)与卷积神经网络(CNN)的联合识别方法。首先,通过搭建毫米波雷达平台采集人体动作的雷达回波数据,经预处理生成... 针对基于毫米波雷达的人体动作识别数据集规模小导致的模型过拟合问题,提出一种基于Wasserstein散度生成对抗网络(WGAN-div)与卷积神经网络(CNN)的联合识别方法。首先,通过搭建毫米波雷达平台采集人体动作的雷达回波数据,经预处理生成微多普勒时频谱图;其次,利用WGAN-div模型学习时频谱图特征分布,生成高质量扩充数据以缓解数据不足;最后,构建浅层CNN模型实现动作分类。实验结果表明,所提方法在6类人体动作识别任务中准确率达98.17%,较深度卷积生成对抗网络(DCGAN)和带梯度惩罚的Wasserstein生成对抗网络(WGAN-gp)分别提升1.67%和0.87%。该方法通过取消Lipschitz约束优化生成质量,有效解决了小样本场景下的识别性能下降问题,为雷达数据增强与动作识别提供了一种新思路。 展开更多
关键词 毫米波雷达 人体动作识别 Wasserstein散度生成对抗网络 卷积神经网络 小样本学习 微多普勒时频谱 雷达数据增强
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低信噪比条件下目标螺旋桨参数估计方法
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作者 韩闯 冷冰 +1 位作者 兰朝凤 邢博闻 《电子与信息学报》 北大核心 2025年第7期2149-2162,共14页
螺旋桨广泛应用于各类航空与航海设备中,如无人机、直升机以及水下舰船,尤其在水下目标探测中,目标的螺旋桨能提供丰富的特征信息。螺旋桨的微动产生的微多普勒频率能够反映其结构和动态行为,成为识别海洋目标的重要指标。准确识别水下... 螺旋桨广泛应用于各类航空与航海设备中,如无人机、直升机以及水下舰船,尤其在水下目标探测中,目标的螺旋桨能提供丰富的特征信息。螺旋桨的微动产生的微多普勒频率能够反映其结构和动态行为,成为识别海洋目标的重要指标。准确识别水下目标螺旋桨的参数,如桨叶数目、桨叶长度以及转速等,对于目标的身份识别具有重要意义。然而,水下探测环境复杂多变,杂波干扰成为常态,对微动特征精准提取构成了挑战,尤其是强杂波背景下,信号处理的难度显著增加。以水下目标螺旋桨参数识别为例,该文针对低信噪比条件下螺旋桨参数估计的挑战,提出一种基于复数域变分模态分解(CVMD)和正交匹配追踪(OMP)算法的新方法。首先分析了螺旋桨回波信号的复杂特性,探讨了传统方法在噪声环境下的局限性。随后,引入CVMD算法对信号进行分解和去噪处理,有效提高了信号的分离能力和抗噪声能力。通过时频分析获取目标闪烁参数,并将其作为先验信息对稀疏字典进行降维处理,降低正交匹配追踪算法的运算量,提高了微动特征参数的估计精度,利用OMP算法,精确提取了螺旋桨的微多普勒特征,实验结果验证了方法的有效性和稳定性。最后,比较了CVMD-OMP方法与传统方法在不同信噪比条件下的性能表现,展示了其在水下声学目标识别中的应用潜力和优势。 展开更多
关键词 微多普勒 信号去噪 特征提取 复数域变分模态分解 正交匹配追踪
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基于逆合成孔径雷达的旋翼目标微动参数分层式估计方法研究
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作者 许志勇 田巳睿 +1 位作者 许克勤 陈琛 《航空科学技术》 2025年第7期57-66,共10页
在对螺旋桨目标的逆合成孔径雷达(ISAR)成像研究中,通过分析回波微多普勒特征,实现螺旋桨特性参数提取,对于完善螺旋桨目标散射特性分析具有重要意义。本文提出了一种分层式的微动参数估计方法,将传统的三维参数搜索简化为三个一维优化... 在对螺旋桨目标的逆合成孔径雷达(ISAR)成像研究中,通过分析回波微多普勒特征,实现螺旋桨特性参数提取,对于完善螺旋桨目标散射特性分析具有重要意义。本文提出了一种分层式的微动参数估计方法,将传统的三维参数搜索简化为三个一维优化问题,实现对旋翼转速、桨叶初相角、桨叶长度的解耦估计。与现有方法相比,该方法具有计算复杂度低、运行时间短等优点,并且能实现方位向欠采样下的准确旋翼参数估计。仿真和实测数据试验表明,该方法旋翼参数估计精度高,运行时间仅为传统遍历算法的10%左右。本文为螺旋桨目标微动特征分析提供了一种高效解决方案,有效地降低了数据采集和处理时的硬件需求。 展开更多
关键词 逆合成孔径雷达 旋翼目标 微多普勒特征 参数估计 参数解耦
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Omnidirectional Human Behavior Recognition Method Based on Frequency-Modulated Continuous-Wave Radar
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作者 SUN Chang WANG Shaohong LIN Yanping 《Journal of Shanghai Jiaotong university(Science)》 2025年第4期637-645,共9页
Frequency-modulated continuous-wave radar enables the non-contact and privacy-preserving recognition of human behavior.However,the accuracy of behavior recognition is directly influenced by the spatial relationship be... Frequency-modulated continuous-wave radar enables the non-contact and privacy-preserving recognition of human behavior.However,the accuracy of behavior recognition is directly influenced by the spatial relationship between human posture and the radar.To address the issue of low accuracy in behavior recognition when the human body is not directly facing the radar,a method combining local outlier factor with Doppler information is proposed for the correction of multi-classifier recognition results.Initially,the information such as distance,velocity,and micro-Doppler spectrogram of the target is obtained using the fast Fourier transform and histogram of oriented gradients-support vector machine methods,followed by preliminary recognition.Subsequently,Platt scaling is employed to transform recognition results into confidence scores,and finally,the Doppler-local outlier factor method is utilized to calibrate the confidence scores,with the highest confidence classifier result considered as the recognition outcome.Experimental results demonstrate that this approach achieves an average recognition accuracy of 96.23%for comprehensive human behavior recognition in various orientations. 展开更多
关键词 frequency-modulated continuous-wave radar omnidirectional human behavior recognition histogram of oriented gradients support vector machine micro-doppler spectrogram Doppler-local outlier factor
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基于微多普勒信号的无人机回波检测技术研究
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作者 闫军 顾村锋 +1 位作者 孔德永 龚江昆 《空天防御》 2025年第1期10-16,23,共8页
近年来,随着无人机的广泛应用,反无人机雷达技术得到了迅猛发展。然而,由于常见无人机具有体积小、雷达散射面积(RCS)有限、运动速度较慢等特点,其雷达回波往往被强烈的背景杂波淹没。传统的基于回波信噪比(SNR)的检测方法存在漏警率高... 近年来,随着无人机的广泛应用,反无人机雷达技术得到了迅猛发展。然而,由于常见无人机具有体积小、雷达散射面积(RCS)有限、运动速度较慢等特点,其雷达回波往往被强烈的背景杂波淹没。传统的基于回波信噪比(SNR)的检测方法存在漏警率高和探测距离短的问题。为此,本文提出了一种创新的检测方法:通过分析无人机旋翼产生的微多普勒信号,即旋翼调制(JEM)效应对应的微多普勒信号,设计了基于回波信杂比(SCR)的检测技术,以实现对目标回波的相对检测。通过微波暗室和雷达外场实验,发现四旋翼无人机和垂直起降无人机在多个雷达测试波段均显著产生微多普勒信号。对比实验结果表明,在海杂波环境下,SCR检测相较于SNR检测具有更好的稳定性、更高的检测效率以及更低的漏警率。 展开更多
关键词 反无人机雷达 无人机探测 漏警率 微多普勒 旋翼调制 信杂比
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基于残差网络的目标参数预测
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作者 朱昊伟 吴龙 +3 位作者 杨旭 徐璐 张勇 陈淑玉 《无线电通信技术》 北大核心 2025年第4期832-843,共12页
空间锥形目标的参数估计在目标姿态确定、再入后落点预测和目标识别等方面具有重要意义。利用深度学习方法,预测在多种假目标干扰下空间锥形目标的几何参数和运动参数。根据物理光学中的面元剖分思想,建立了多种目标的面散射模型,仿真... 空间锥形目标的参数估计在目标姿态确定、再入后落点预测和目标识别等方面具有重要意义。利用深度学习方法,预测在多种假目标干扰下空间锥形目标的几何参数和运动参数。根据物理光学中的面元剖分思想,建立了多种目标的面散射模型,仿真了各目标的回波信号,利用短时傅里叶变换(Short-Time Fourier Transform,STFT)对回波信号进行时频分析,以获取由目标微动引起的微多普勒时频谱。根据提出的基于空间金字塔的多层残差网络(Spatial Pyramid Pooling-Residual Network,SPP-ResNet),实现对空间锥形目标的参数预测。仿真结果表明,所提方法对各项参数预测的平均相对误差(Mean Relative Error,MRE)在15%以内,为实现空间锥形目标运动轨迹的预测奠定了基础。 展开更多
关键词 激光雷达 微多普勒 光信号处理 深度学习 参数预测
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