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ECCM scheme against interrupted sampling repeater jammer based on time-frequency analysis 被引量:40
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作者 Shixian Gong Xizhang Wei Xiang Li 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第6期996-1003,共8页
The interrupted sampling repeater jamming(ISRJ) is an effective deception jamming method for coherent radar, especially for the wideband linear frequency modulation(LFM) radar. An electronic counter-countermeasure... The interrupted sampling repeater jamming(ISRJ) is an effective deception jamming method for coherent radar, especially for the wideband linear frequency modulation(LFM) radar. An electronic counter-countermeasure(ECCM) scheme is proposed to remove the ISRJ-based false targets from the pulse compression result of the de-chirping radar. Through the time-frequency(TF) analysis of the radar echo signal, it can be found that the TF characteristics of the ISRJ signal are discontinuous in the pulse duration because the ISRJ jammer needs short durations to receive the radar signal. Based on the discontinuous characteristics a particular band-pass filter can be generated by two alternative approaches to retain the true target signal and suppress the ISRJ signal. The simulation results prove the validity of the proposed ECCM scheme for the ISRJ. 展开更多
关键词 interrupted sampling repeater jamming(ISRJ) de-chirping radar time-frequency(TF) electronic counter-countermeasure(ECCM)
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Parametric adaptive time-frequency representation based on time-sheared Gabor atoms 被引量:2
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作者 Ma Shiwei Zhu Xiaojin Chen Guanghua Wang Jian Cao Jialin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第1期1-7,共7页
A localized parametric time-sheared Gabor atom is derived by convolving a linear frequency modulated factor, modulating in frequency and translating in time to a dilated Gaussian function, which is the generalization ... A localized parametric time-sheared Gabor atom is derived by convolving a linear frequency modulated factor, modulating in frequency and translating in time to a dilated Gaussian function, which is the generalization of Gabor atom and is more delicate for matching most of the signals encountered in practice, especially for those having frequency dispersion characteristics. The time-frequency distribution of this atom concentrates in its time center and frequency center along energy curve, with the curve being oblique to a certain extent along the time axis. A novel parametric adaptive time-frequency distribution based on a set of the derived atoms is then proposed using a adaptive signal subspace decomposition method in frequency domain, which is non-negative time-frequency energy distribution and free of cross-term interference for multicomponent signals. The results of numerical simulation manifest the effectiveness of the approach in time-frequency representation and signal de-noising processing. 展开更多
关键词 time-frequency analysis Gabor atom Time-shear Adaptive signal decomposition time-frequency distribution.
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Adaptive target and jamming recognition for the pulse doppler radar fuze based on a time-frequency joint feature and an online-updated naive bayesian classifier with minimal risk 被引量:9
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作者 Jian Dai Xin-hong Hao +2 位作者 Ze Li Ping Li Xiao-peng Yan 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2022年第3期457-466,共10页
This paper considers the problem of target and jamming recognition for the pulse Doppler radar fuze(PDRF).To solve the problem,the matched filter outputs of the PDRF under the action of target and jamming are analyzed... This paper considers the problem of target and jamming recognition for the pulse Doppler radar fuze(PDRF).To solve the problem,the matched filter outputs of the PDRF under the action of target and jamming are analyzed.Then,the frequency entropy and peak-to-peak ratio are extracted from the matched filter output of the PDRF,and the time-frequency joint feature is constructed.Based on the time-frequency joint feature,the naive Bayesian classifier(NBC)with minimal risk is established for target and jamming recognition.To improve the adaptability of the proposed method in complex environments,an online update process that adaptively modifies the classifier in the duration of the work of the PDRF is proposed.The experiments show that the PDRF can maintain high recognition accuracy when the signal-to-noise ratio(SNR)decreases and the jamming-to-signal ratio(JSR)increases.Moreover,the applicable analysis shows that he ONBCMR method has low computational complexity and can fully meet the real-time requirements of PDRF. 展开更多
关键词 Pulse Doppler radar fuze(PDRF) Target and jamming recognition time-frequency joint feature Online-update naive Bayesian classifier minimal risk(ONBCMR)
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Parameterized time-frequency analysis to separate multi-radar signals 被引量:1
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作者 Wenlong Lu Junwei Xie +1 位作者 Heming Wang Chuan Sheng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2017年第3期493-502,共10页
Multi-radar signal separation is a critical process in modern reconnaissance systems. However, the complicated battlefield is typically confronted with increasing electronic equipment and complex radar waveforms. The ... Multi-radar signal separation is a critical process in modern reconnaissance systems. However, the complicated battlefield is typically confronted with increasing electronic equipment and complex radar waveforms. The intercepted signal is difficult to separate with conventional parameters because of severe overlapping in both time and frequency domains. On the contrary, time-frequency analysis maps the 1D signal into a 2D time-frequency plane, which provides a better insight into the signal than traditional methods. Particularly, the parameterized time-frequency analysis (PTFA) shows great potential in processing such non stationary signals. Five procedures for the PTFA are proposed to separate the overlapped multi-radar signal, including initiation, instantaneous frequency estimation with PTFA, signal demodulation, signal separation with adaptive filter and signal recovery. The proposed method is verified with both simulated and real signals, which shows good performance in the application on multi-radar signal separation. 展开更多
关键词 intercepted multi-radar signal parameterized time-frequency analysis DEMODULATION adaptive filtering
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Underdetermined DOA estimation and blind separation of non-disjoint sources in time-frequency domain based on sparse representation method 被引量:9
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作者 Xiang Wang Zhitao Huang Yiyu Zhou 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第1期17-25,共9页
This paper deals with the blind separation of nonstation-ary sources and direction-of-arrival (DOA) estimation in the under-determined case, when there are more sources than sensors. We assume the sources to be time... This paper deals with the blind separation of nonstation-ary sources and direction-of-arrival (DOA) estimation in the under-determined case, when there are more sources than sensors. We assume the sources to be time-frequency (TF) disjoint to a certain extent. In particular, the number of sources presented at any TF neighborhood is strictly less than that of sensors. We can identify the real number of active sources and achieve separation in any TF neighborhood by the sparse representation method. Compared with the subspace-based algorithm under the same sparseness assumption, which suffers from the extra noise effect since it can-not estimate the true number of active sources, the proposed algorithm can estimate the number of active sources and their cor-responding TF values in any TF neighborhood simultaneously. An-other contribution of this paper is a new estimation procedure for the DOA of sources in the underdetermined case, which combines the TF sparseness of sources and the clustering technique. Sim-ulation results demonstrate the validity and high performance of the proposed algorithm in both blind source separation (BSS) and DOA estimation. 展开更多
关键词 underdetermined blind source separation (UBSS)time-frequency (TF) domain sparse representation methoditerative adaptive approach direction-of-arrival (DOA) estimationclustering validation.
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Quasi-LFM radar waveform recognition based on fractional Fourier transform and time-frequency analysis 被引量:3
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作者 XIE Cunxiang ZHANG Limin ZHONG Zhaogen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第5期1130-1142,共13页
Recent advances in electronics have increased the complexity of radar signal modulation.The quasi-linear frequency modulation(quasi-LFM)radar waveforms(LFM,Frank code,P1−P4 code)have similar time-frequency distributio... Recent advances in electronics have increased the complexity of radar signal modulation.The quasi-linear frequency modulation(quasi-LFM)radar waveforms(LFM,Frank code,P1−P4 code)have similar time-frequency distributions,and it is difficult to identify such signals using traditional time-frequency analysis methods.To solve this problem,this paper proposes an algorithm for automatic recognition of quasi-LFM radar waveforms based on fractional Fourier transform and time-frequency analysis.First of all,fractional Fourier transform and the Wigner-Ville distribution(WVD)are used to determine the number of main ridgelines and the tilt angle of the target component in WVD.Next,the standard deviation of the target component's width in the signal's WVD is calculated.Finally,an assembled classifier using neural network is built to recognize different waveforms by automatically combining the three features.Simulation results show that the overall recognition rate of the proposed algorithm reaches 94.17%under 0 dB.When the training data set and the test data set are mixed with noise,the recognition rate reaches 89.93%.The best recognition accuracy is achieved when the size of the training set is taken as 400.The algorithm complexity can meet the requirements of real-time recognition. 展开更多
关键词 quasi-linear frequency modulation(quasi-LFM)radar waveform time-frequency distribution fractional Fourier transform(FrFT) assembled classifier
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Construction of time-frequency codes based on protograph LDPC codes in OFDM communication systems 被引量:2
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作者 Kaiyao Wang Yang Xiao Kiseon Kim 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2012年第3期335-341,共7页
This paper proposes a scheme to construct time- frequency codes based on protograph low density parity check (LDPC) codes in orthogonal frequency division multiplexing (OFDM) communication systems. This approach s... This paper proposes a scheme to construct time- frequency codes based on protograph low density parity check (LDPC) codes in orthogonal frequency division multiplexing (OFDM) communication systems. This approach synthesizes two techniques: protograph LDPC codes and OFDM. One symbol of encoded information by protograph LDPC codes corresponds to one sub-carrier, namely the length of encoded information equals to the number of sub-carriers. The design of good protograph LDPC codes with short lengths is given, and the proposed proto- graph LDPC codes can be of fast encoding, which can reduce the encoding complexity and simplify encoder hardware implementa- tion. The proposed approach provides a higher coding gain in the Rayleigh fading channel. The simulation results in the Rayleigh fading channel show that the bit error rate (BER) performance of the proposed time-frequency codes is as good as random LDPC- OFDM codes and is better than Tanner LDPC-OFDM codes under the condition of different fading coefficients. 展开更多
关键词 time-frequency code protograph low density parity check (LDPC) code orthogonal frequency division multiplexing (OFDM) fast encoding algorithm.
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Aviation multi-station collaborative detecting based on time-frequency correlation of data-link 被引量:1
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作者 Bo Wang Xiaolong Liang +1 位作者 Liang Wei Pingni Liu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2017年第5期827-840,共14页
As an important application research topic of the intelligent aviation multi-station, collaborative detecting must overcome the problem of scouting measurement with status of 'fragmentation', and the NP-hardne... As an important application research topic of the intelligent aviation multi-station, collaborative detecting must overcome the problem of scouting measurement with status of 'fragmentation', and the NP-hardness problem of matching association between target and measurement in the process of scouting to data-link, which has complicated technical architecture of network construction. In this paper, taking advantage of cooperation mechanism on signal level in the aviation multi-station sympathetic network, a method of obtaining target time difference of arrival (TDOA) measurement using multi-station collaborative detecting based on time-frequency association is proposed. The method can not only achieve matching between target and its measurement, but also obtain TDOA measurement by further evolutionary transaction through refreshing sequential pulse time of arrival (TOA) measurement matrix for matching and correlating. Simulation results show that the accuracy of TDOA measurement has significant superiority over TOA, and detection probability of false TDOA measurement introduced by noise and fake measurement can be reduced effectively. 展开更多
关键词 data-link time-frequency correlation aviation multistation synergistic detection time difference of arrival (TDOA)
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Parameter estimation of maneuvering targets in OTHR based on sparse time-frequency representation 被引量:2
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作者 Jinfeng Hu Xuan He +3 位作者 Wange Li Hui Ai Huiyong Li Julan Xie 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第3期574-580,共7页
This paper proposes a new method for estimating the parameter of maneuvering targets based on sparse time-frequency transform in over-the-horizon radar(OTHR). In this method, the sparse time-frequency distribution o... This paper proposes a new method for estimating the parameter of maneuvering targets based on sparse time-frequency transform in over-the-horizon radar(OTHR). In this method, the sparse time-frequency distribution of the radar echo is obtained by solving a sparse optimization problem based on the short-time Fourier transform. Then Hough transform is employed to estimate the parameter of the targets. The proposed algorithm has the following advantages: Compared with the Wigner-Hough transform method, the computational complexity of the sparse optimization is low due to the application of fast Fourier transform(FFT). And the computational cost of Hough transform is also greatly reduced because of the sparsity of the time-frequency distribution. Compared with the high order ambiguity function(HAF) method, the proposed method improves in terms of precision and robustness to noise. Simulation results show that compared with the HAF method, the required SNR and relative mean square error are 8 dB lower and 50 dB lower respectively in the proposed method. While processing the field experiment data, the execution time of Hough transform in the proposed method is only 4% of the Wigner-Hough transform method. 展开更多
关键词 over-the-horizon radar(OTHR) maneuvering tar-get parameter estimation sparse time-frequency transform Hough transform
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Digital modulation classification using multi-layer perceptron and time-frequency features
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作者 Yuan Ye Mei Wenbo 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第2期249-254,共6页
Considering that real communication signals corrupted by noise are generally nonstationary, and timefrequency distributions are especially suitable for the analysis of nonstationary signals, time-frequency distributio... Considering that real communication signals corrupted by noise are generally nonstationary, and timefrequency distributions are especially suitable for the analysis of nonstationary signals, time-frequency distributions are introduced for the modulation classification of communication signals: The extracted time-frequency features have good classification information, and they are insensitive to signal to noise ratio (SNR) variation. According to good classification by the correct rate of a neural network classifier, a multilayer perceptron (MLP) classifier with better generalization, as well as, addition of time-frequency features set for classifying six different modulation types has been proposed. Computer simulations show that the MLP classifier outperforms the decision-theoretic classifier at low SNRs, and the classification experiments for real MPSK signals verify engineering significance of the MLP classifier. 展开更多
关键词 Digital modulation classification time-frequency feature time-frequency distribution Multi-layer perceptron.
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The Time-Frequency Characteristics of Pulse Propagation Through Plasma
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作者 Dong Xiaoting Liu Yaxun & Wang Wenbing(Electromagnetic and Communication Laboratory, School of Electronic and Information Engineering,Xi’an Jiaotong University 710049, P. R. China) 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2000年第2期55-60,共6页
In this paper, propagated δ pulses through different distance of plasma are calculated,and their time-frequency characteristics are studied using CWD (Choi-William distribution). It is found that several horizontal s... In this paper, propagated δ pulses through different distance of plasma are calculated,and their time-frequency characteristics are studied using CWD (Choi-William distribution). It is found that several horizontal spectra appear at early arrival time like discrete spectrum, at last time a hyperbolic curve lies in the time-frequency spectrum which corresponds to the frequency-group delay curve of plasma. To understand the time-frequency the property of a signal is helpful for obtaining the plasma parameters. 展开更多
关键词 Electromagnetic scattering Scattering center time-frequency analysis
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基于改进EfficientNet的煤矸音频分类方法 被引量:1
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作者 宋庆军 焦守悦 +2 位作者 姜海燕 宋庆辉 郝文超 《工矿自动化》 北大核心 2025年第1期138-144,共7页
针对煤矸音频特征提取过程中设备运行噪声干扰严重及单一提取方法易导致信息丢失的问题,提出了一种基于改进EfficientNet的煤矸音频分类方法。采用基于Mel频谱和Gammatone倒谱系数的特征提取方法,有效捕捉矸石声音中的低频信息和细节特... 针对煤矸音频特征提取过程中设备运行噪声干扰严重及单一提取方法易导致信息丢失的问题,提出了一种基于改进EfficientNet的煤矸音频分类方法。采用基于Mel频谱和Gammatone倒谱系数的特征提取方法,有效捕捉矸石声音中的低频信息和细节特征。选择EfficientNet-B0作为骨干网络,并对其进行以下改进:将原有的多尺度通道注意力模块换成卷积块注意力模块,得到卷积注意力特征融合(CAFF)模块,通过网络自学习为不同空间位置的特征分配不同的权重信息,生成新的有效特征;在原有的MBConv模块中并行嵌入频域通道注意力(FCA)模块,加强特征图的表达能力,从而提高整个网络的性能。实验结果表明:引入CAFF模块后,模型准确率提升了0.61%,F1得分提升了0.52%,且模型收敛更快,说明CAFF模块有效提升了模型对频谱特征的捕捉能力;引入FCA模块后,准确率提升了0.45%,F1得分提升了0.62%,说明模块的叠加可以进一步提高模型的泛化能力和处理复杂特征的能力;改进EfficientNe模型的准确率为91.90%,标准差为0.108,显著优于同类对比音频分类模型。 展开更多
关键词 综放开采 煤矸识别 音频特征提取 EfficientNet Mel频谱特征 Gammatone倒谱系数 注意力机制
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基于声纹脊线化和元学习的变压器故障诊断方法
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作者 曲朝阳 刘谊豪 +2 位作者 曲楠 姜涛 徐晓宇 《电力系统保护与控制》 北大核心 2025年第13期163-174,共12页
针对变压器声纹检测中信号易受干扰且足量样本获取困难的问题,提出一种融合声纹脊线化与元学习的变压器声纹诊断方法。首先,基于脊线化特征处理,对优化后的变压器声纹时频谱图进行物理特征筛选与形态特征压缩。然后,搭建选择性编码器(se... 针对变压器声纹检测中信号易受干扰且足量样本获取困难的问题,提出一种融合声纹脊线化与元学习的变压器声纹诊断方法。首先,基于脊线化特征处理,对优化后的变压器声纹时频谱图进行物理特征筛选与形态特征压缩。然后,搭建选择性编码器(selective encoder, SE)加深时频与形态表征的关联度,提升模型收敛速度。最后,构造元学习网络评估变压器状态,并引入基于OD-Reptile的一阶梯度更新策略,通过内外循环优化机制增强参数泛化性,从而实现少样本、信息干扰条件下的高精度声纹诊断。相较于R-WDCNN、LSTM、CNN等传统深度学习信号诊断方法,该方法在低样本、高噪声环境下(SNR为-12 dB),收敛轮数减少10轮以上。同时,准确率分别提高6.35%,12.1%和16.93%。实验结果显示,所提方法在准确性、抗噪性、鲁棒性以及泛化性方面均有显著提升。 展开更多
关键词 声纹 小样本 脊线化 时频谱图 选择性编码 元学习 故障诊断
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基于声谱图和卷积神经网络的磁暴图像识别
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作者 李鸿宇 孙君嵩 +2 位作者 王丽 杨杰 赵雨馨 《空间科学学报》 北大核心 2025年第4期943-949,共7页
磁暴是一种重要的地磁场扰动类型,影响着通信、电力和航空航天等领域,因此对磁暴识别技术进行研究与创新有助于磁暴信息的应用.基于2010-2023年12个定点地磁观测水平分量分钟值数据,采用声谱图成像技术,运用VGG19卷积神经网络模型开展... 磁暴是一种重要的地磁场扰动类型,影响着通信、电力和航空航天等领域,因此对磁暴识别技术进行研究与创新有助于磁暴信息的应用.基于2010-2023年12个定点地磁观测水平分量分钟值数据,采用声谱图成像技术,运用VGG19卷积神经网络模型开展磁暴日和磁静日人工智能图像分类研究.实验结果显示,模型的准确率为97.41%,精确率为98.00%,召回率为96.80%,模型的预测能力较好,这表明声谱图成像技术在图像识别分类问题中具有较高的实用性,且VGG19卷积神经网络模型用于磁暴日和磁静日地磁分类的可行性较高,研究结果为磁暴预警与监测提供了新的思路. 展开更多
关键词 地磁 磁暴 声谱图 卷积神经网络 图像分类
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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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基于超声信号的金属化膜电容器老化状态评估方法 被引量:1
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作者 许馨愉 汲胜昌 +2 位作者 郑琳子 闫昕旖 祝令瑜 《电工技术学报》 北大核心 2025年第5期1652-1661,共10页
金属化膜电容器(MFC)是模块化多电平变流器(MMC)中较为薄弱的部件之一,准确地评估其健康状态对柔性直流输电系统的安全稳定运行意义重大。该文对MFC超声信号的局部放电相位分布(PRPD)谱图进行分析,提出一种基于健康指数公式的老化状态... 金属化膜电容器(MFC)是模块化多电平变流器(MMC)中较为薄弱的部件之一,准确地评估其健康状态对柔性直流输电系统的安全稳定运行意义重大。该文对MFC超声信号的局部放电相位分布(PRPD)谱图进行分析,提出一种基于健康指数公式的老化状态评估方法。首先,通过搭建超声监测试验平台采集声信号,分析MFC在老化过程中的失效机理;其次,基于自愈放电和局部放电比例的显著变化,探讨老化对PRPD谱图中放电信号分布的影响;最后在此基础上,构建基于健康指数公式的线性回归模型进行老化状态评估,并通过试验验证所提方法与模型的可行性和有效性。结果表明,与现有方法相比,该方法只需采集超声信号的PRPD谱图信息即可评估MFC当前的老化程度,解决了传统方法会对系统回路造成影响、抗干扰能力弱且监测精度较低的问题,为MMC的状态监测和寿命评估提供了新的手段,并为MFC非电量状态监测方法的研究奠定了基础。 展开更多
关键词 金属化膜电容器 超声法 局部放电相位分布(PRPD)谱图 老化状态评估
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基于改进MobileNetV3的笼养蛋鸡声音分类识别方法 被引量:2
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作者 衡一帆 盛哲雅 +3 位作者 严煜 谷月 周昊博 王树才 《农业机械学报》 北大核心 2025年第4期427-435,共9页
为实现笼养蛋鸡声音的准确分类,实现蛋鸡健康、情绪、生产状态等信息的智能化、非接触式检测,提出了一种基于改进MobileNetV3的笼养蛋鸡声音分类识别方法。以欣华二号蛋鸡为研究对象,采集蛋鸡在笼养条件下发出的热应激声、惊吓声、产蛋... 为实现笼养蛋鸡声音的准确分类,实现蛋鸡健康、情绪、生产状态等信息的智能化、非接触式检测,提出了一种基于改进MobileNetV3的笼养蛋鸡声音分类识别方法。以欣华二号蛋鸡为研究对象,采集蛋鸡在笼养条件下发出的热应激声、惊吓声、产蛋声以及鸣唱声,经过声音预处理将一维声音信号转化为三维梅尔频谱图,建立了包括8541幅梅尔频谱图的蛋鸡声音数据集。通过在MobileNetV3中引入高效通道注意力(Efficient channel attention,ECA)模块,提高了笼养蛋鸡声音分类准确率。试验结果表明,MobileNetV3-ECA模型准确率、召回率、精确率以及F1分数分别达到95.25%、95.16%、95.02%、95.08%,相比原始模型分别提高1.99、2.08、2.00、2.04个百分点。通过与分别引入坐标注意力(Coordinate attention,CA)、卷积块注意力模块(Convolutional block attention module,CBAM)的模型对比,引入ECA模块后模型准确率分别提高2.11、2.03个百分点,其他指标同样有更明显的提高。与ShuffleNetV2、DesNet121和EfficientNetV2模型相比,MobileNetV3-ECA准确率分别提高1.99、2.03、2.50个百分点。本文提出的基于MobileNetV3-ECA的蛋鸡声音分类识别方法,能够有效且准确地实现对包括热应激声在内的不同种类蛋鸡声音分类识别,为蛋鸡规模化养殖中的自动化、智能化声音检测提供了算法支持,为禽舍巡检机器人功能优化提供了参考,同时为规模化笼养蛋鸡热应激预警开辟了思路。 展开更多
关键词 笼养蛋鸡 声音分类 MobileNetV3 高效通道注意力 梅尔频谱图 卷积神经网络
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基于声音信号的转辙机故障诊断研究 被引量:1
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作者 梁续继 戴胜华 《铁道标准设计》 北大核心 2025年第2期183-190,共8页
铁路信号系统中转辙机的故障率较高,需要采用智能化解决方案对故障进行诊断。传统的解决方案基于电信号,未能充分利用机械电子设备的物理特征。针对这一问题,基于转辙机动作时的声音进行故障诊断。首先,根据转辙机的动作特性提出6种会... 铁路信号系统中转辙机的故障率较高,需要采用智能化解决方案对故障进行诊断。传统的解决方案基于电信号,未能充分利用机械电子设备的物理特征。针对这一问题,基于转辙机动作时的声音进行故障诊断。首先,根据转辙机的动作特性提出6种会影响声音信号的常见机械故障。然后,根据声音诊断在特征提取方面的不同路线,采用3种技术方案。端到端方案通过wav2vec2.0语音识别框架直接进行训练和识别;特征矩阵方案提取声音信号的梅尔倒谱系数(MFCC),通过主成分分析(PCA)得到固定尺寸的特征矩阵,由多分类支持向量机(SVM)进行故障分类;声音图像化方案生成声音信号的语谱图,同时建立卷积神经网络VGG16的轻量化改进模型,将语谱图输入至该模型中进行训练和识别。实验结果表明,3种技术方案均能有效地对包括正常工作和6种故障类型的7种工作状态实现诊断,准确率分别为99.8%、94.2%和96.6%。验证了基于声音进行转辙机故障诊断的3种技术方案的可行性,并体现了语音领域技术在转辙机故障诊断中的应用价值。 展开更多
关键词 转辙机 故障诊断 声音信号 特征提取 wav2vec2.0 MFCC 语谱图
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融合动态卷积和注意力机制的多层感知机语音情感识别 被引量:1
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作者 张雨萌 张欣 +1 位作者 高谋 赵虎林 《计算机科学与探索》 北大核心 2025年第4期1065-1075,共11页
语音情感识别技术通过分析语音信号推断说话者情绪,增强人机交互的自然性和智能性。然而,现有模型往往忽视时频语义信息,影响识别准确性。为此,提出了一种融合动态卷积与注意力机制的多层感知机模型,显著提高了情感识别的准确度及信息... 语音情感识别技术通过分析语音信号推断说话者情绪,增强人机交互的自然性和智能性。然而,现有模型往往忽视时频语义信息,影响识别准确性。为此,提出了一种融合动态卷积与注意力机制的多层感知机模型,显著提高了情感识别的准确度及信息利用效率。将输入的语音信号转化为梅尔频谱图,捕捉信号细节变化,更贴切地反映人类对声音的感知,为后续特征提取奠定了基础。通过词元化处理将梅尔频谱图转化为词元,降低了数据的复杂性。借助动态卷积与分离注意力机制高效提取关键的时频特征。一方面,动态卷积能够适应不同时间和频率上的尺度变化,优化了特征捕捉效率;另一方面,分离注意力机制增强了模型对关键信息的聚焦能力,有效提升了模型对特征的表达能力。结合动态卷积与分离注意力机制的优势,该模型能够更加充分地提取关键声学特征,从而实现了更高效、更精准的情感识别。在RAVDESS、EmoDB和CASIA三个语音情感数据库上的测试显示,模型识别准确率显著优于现有技术,达到86.11%、95.33%和82.92%。这验证了模型在复杂情感识别任务的高效性和准确性,以及动态卷积和注意力机制的有效性。 展开更多
关键词 语音情感识别 梅尔频谱图 多层感知机 动态卷积 注意力机制
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基于ASP-SERes2Net的说话人识别算法 被引量:1
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作者 令晓明 陈鸿雁 +1 位作者 张小玉 张真 《北京工业大学学报》 CAS 北大核心 2025年第1期42-50,共9页
为提升说话人识别的特征提取能力,解决在噪声环境下识别率低的问题,提出一种基于残差网络的说话人识别算法——ASP-SERes2Net。首先,采用梅尔语谱图作为神经网络的输入;其次,改进Res2Net网络的残差块,并且在每个残差块后引入压缩激活(sq... 为提升说话人识别的特征提取能力,解决在噪声环境下识别率低的问题,提出一种基于残差网络的说话人识别算法——ASP-SERes2Net。首先,采用梅尔语谱图作为神经网络的输入;其次,改进Res2Net网络的残差块,并且在每个残差块后引入压缩激活(squeeze-and-excitation,SE)注意力模块;然后,用注意力统计池化(attention statistics pooling,ASP)代替原来的平均池化;最后,采用附加角裕度的Softmax(additive angular margin Softmax,AAM-Softmax)对说话人身份进行分类。通过实验,将ASP-SERes2Net算法与时延神经网络(time delay neural network,TDNN)、ResNet34和Res2Net进行对比,ASP-SERes2Net算法的最小检测代价函数(minimum detection cost function,MinDCF)值为0.0401,等误率(equal error rate,EER)为0.52%,明显优于其他3个模型。结果表明,ASP-SERes2Net算法性能更优,适合应用于噪声环境下的说话人识别。 展开更多
关键词 说话人识别 梅尔语谱图 Res2Net 压缩激活(squeeze-and-excitation SE)注意力模块 注意力统计池化(attention statistics pooling ASP) 附加角裕度的Softmax(additive angular margin Softmax AAM-Softmax)
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