Space Target Classification With Corrupted HRRP Sequences Based on Temporal-Spatial Feature Aggregation Network

被引:0
作者
Zhang, Yuan-Peng [1 ,2 ]
Zhang, Lei [3 ]
Kang, Le [1 ]
Wang, Huan [1 ,4 ]
Luo, Ying [1 ,5 ,6 ]
Zhang, Qun [1 ,5 ,6 ]
机构
[1] AF Engn Univ, Inst Informat & Nav, Xian 710077, Peoples R China
[2] Early Warning Acad, Wuhan 430019, Peoples R China
[3] Med AI Technol Co Ltd, Chengdu 610096, Peoples R China
[4] Xian Elect Engn Res Inst, Xian 710100, Peoples R China
[5] Fudan Univ, Key Lab Informat Sci Electromagnet Waves, Minist Educ, Shanghai 200433, Peoples R China
[6] Collaborat Innovat Ctr Informat Sensing & Understa, Xian 710077, Peoples R China
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 2023年 / 61卷
基金
中国国家自然科学基金;
关键词
Radar; Feature extraction; Transformers; Spaceborne radar; Scattering; Radar imaging; Radar cross-sections; High-resolution range profile (HRRP) sequence; micromotion; radar automatic target recognition (RATR); space targets; Transformer; BALLISTIC TARGET; RADAR; RECOGNITION; EXTRACTION; MODEL;
D O I
10.1109/TGRS.2023.3235881
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
High-resolution range profile (HRRP) sequences have great potential for space target classification because they can provide both scattering information and micromotion information. However, many factors cause an obtained HRRP sequence for a space target to be corrupted in real cases due to noise interference, limited radar resources, and the requirement of multitarget observations. Many space target classification methods cease to be effective when HRRP sequences are corrupted, so classifying space targets with corrupted HRRP sequences is still a challenging problem. To solve this problem, a novel space target classification method based on a temporal-spatial feature aggregation network (TSFA-Net) is proposed by using the corrupted HRRP sequences directly. First, a sequence-to-token module (S2T-module) is designed to extract low-level and fine-grained features from the raw inputs. Second, to effectively model the long-range dependencies among corrupted HRRP sequences and capture global representations without losing target local features, we propose a parallel and dual-branch block, i.e., a temporal-spatial feature aggregation block (TSFA-block), by combining a Transformer network and a convolutional neural network (CNN). Then, via progressively hierarchically stacking TSFA-blocks, a hierarchical temporal-spatial feature aggregation subnetwork (H-TSFA-subnetwork) is constructed to obtain the final temporal-spatial features. Finally, a token-to-label module (T2L-module) is adopted to obtain the classification results. Extensive experiments demonstrate that the proposed method achieves state-of-the-art classification accuracy for space target classification with HRRP sequences, especially under the conditions of a low signal-to-noise ratio and a high missing rate.
引用
收藏
页数:18
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