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基于稀疏表示理论的来波方位估计新方法
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作者 罗争 龚坚 吴林 《中国无线电》 2014年第3期50-52,共3页
针对稀疏表示理论在DOA估计中的难点问题,在给出阵列结构与信号模型的基础上,对空间信号稀疏表述中的单快拍时域数据模型和多快拍联合稀疏模型进行了深入研究,最后通过大量实验证实了方法的科学性与可行性。
关键词 波达方向估计 稀疏分解理论 相干信号 多快拍联合稀疏
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基于GOMP的Chirp扩频水声通信信号降噪处理 被引量:1
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作者 李聪颖 邢传玺 都立立 《云南民族大学学报(自然科学版)》 CAS 2023年第4期492-499,共8页
受海况影响,水声通信信号会淹没在各种海洋环境噪声中,导致水听器接收信号含有大量噪声干扰.针对此问题,利用稀疏分解(sparse decomposition)理论,通过广义正交匹配追踪(generalized orthogonal matching pursuit,GOMP)算法对Chirp扩频(... 受海况影响,水声通信信号会淹没在各种海洋环境噪声中,导致水听器接收信号含有大量噪声干扰.针对此问题,利用稀疏分解(sparse decomposition)理论,通过广义正交匹配追踪(generalized orthogonal matching pursuit,GOMP)算法对Chirp扩频(chirp spread spectrum,CSS)水声通信信号进行降噪处理.首先根据水声通信信号构建过完备离散余弦变换(Discrete Cosine Transform,DCT)字典;其次根据GOMP算法计算恢复信号的稀疏矩阵;再重构信号.在不同噪声级数下的仿真结果表明信噪比在-20 dB时,该方法使水声通信系统中水听器对接收信号噪声抑制能力较强,提高了水听器的性能. 展开更多
关键词 Chirp扩频 稀疏分解理论 广义正交匹配追踪(GOMP) 离散余弦变换(DCT)字典
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A bearing fault diagnosis method based on sparse decomposition theory 被引量:1
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作者 张新鹏 胡茑庆 +1 位作者 胡雷 陈凌 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第8期1961-1969,共9页
The bearing fault information is often interfered or lost in the background noise after the vibration signal being transferred complicatedly, which will make it very difficult to extract fault features from the vibrat... The bearing fault information is often interfered or lost in the background noise after the vibration signal being transferred complicatedly, which will make it very difficult to extract fault features from the vibration signals. To avoid the problem in choosing and extracting the fault features in bearing fault diagnosing, a novelty fault diagnosis method based on sparse decomposition theory is proposed. Certain over-complete dictionaries are obtained by training, on which the bearing vibration signals corresponded to different states can be decomposed sparsely. The fault detection and state identification can be achieved based on the fact that the sparse representation errors of the signal on different dictionaries are different. The effects of the representation error threshold and the number of dictionary atoms used in signal decomposition to the fault diagnosis are analyzed. The effectiveness of the proposed method is validated with experimental bearing vibration signals. 展开更多
关键词 fault diagnosis sparse decomposition dictionary learning representation error
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