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基于被动声纳探测网络的空间配准算法
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作者 胡雷 林岳松 +1 位作者 戚浓飞 郭云飞 《杭州电子科技大学学报(自然科学版)》 2010年第4期173-176,共4页
该文针对被动声纳组网后,其探测范围和探测精度都比单个声纳系统有较大改善,但探测网络中常常存在系统和随机误差,如若不进行处理,则会严重影响组网的探测性能。该文在忽略模型线性化误差的情况下,通过一阶Taylor展开,将观测方程线性化... 该文针对被动声纳组网后,其探测范围和探测精度都比单个声纳系统有较大改善,但探测网络中常常存在系统和随机误差,如若不进行处理,则会严重影响组网的探测性能。该文在忽略模型线性化误差的情况下,通过一阶Taylor展开,将观测方程线性化,得到系统误差估计的数学模型,从而利用广义最小二乘算法求出系统误差。之后再对原始测量数据进行误差补偿,修正被动声纳的固有偏差,提高被动声纳探测网络的定位精度。 展开更多
关键词 被动声纳网络 广义最小二乘 空间配准
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An Automated Approach to Passive Sonar Classification Using Binary Image Features
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作者 Vahid Vahidpour Amlr Rastegarnia Azam Khalili 《Journal of Marine Science and Application》 CSCD 2015年第3期327-333,共7页
This paper proposes a new method for ship recognition and classification using sound produced and radiated underwater. To do so, a three-step procedure is proposed. First, the preprocessing operations are utilized to ... This paper proposes a new method for ship recognition and classification using sound produced and radiated underwater. To do so, a three-step procedure is proposed. First, the preprocessing operations are utilized to reduce noise effects and provide signal for feature extraction. Second, a binary image, made from frequency spectrum of signal segmentation, is formed to extract effective features. Third, a neural classifier is designed to classify the signals. Two approaches, the proposed method and the fractal-based method are compared and tested on real data. The comparative results indicated better recognition ability and more robust performance of the proposed method than the fractal-based method. Therefore, the proposed method could improve the recognition accuracy of underwater acoustic targets. 展开更多
关键词 binary image passive sonar neural classifier ship recognition short-time Fourier transform fractal-based method
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