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Journal of Chinese Inertial Technology    2023, 31 (8): 743-749.  
Abstract360)      PDF(pc) (2411KB)(661)      
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Journal of Chinese Inertial Technology    2023, 31 (8): 750-759.  
Abstract147)      PDF(pc) (1359KB)(401)      
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Journal of Chinese Inertial Technology    2023, 31 (8): 777-782.  
Abstract114)      PDF(pc) (677KB)(127)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 107-114.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.001
Abstract88)      PDF(pc) (1841KB)(82)      
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Journal of Chinese Inertial Technology    2023, 31 (8): 768-776.  
Abstract80)      PDF(pc) (3405KB)(127)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 52-57.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.007
Abstract76)      PDF(pc) (4583KB)(72)      
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Journal of Chinese Inertial Technology    2023, 31 (8): 760-767.  
Abstract71)      PDF(pc) (878KB)(101)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 1-7.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.001
Abstract68)      PDF(pc) (529KB)(95)      
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Modeling and compensation of navigation error based on self-supervised LSTM network in complex environment
Journal of Chinese Inertial Technology    2024, 32 (2): 115-124.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.002
Abstract63)      PDF(pc) (1751KB)(83)      
Aiming at the problems that the inertial navigation system has interactive effects and navigation errors are difficult to identify in complex environment, a navigation error compensation method based on self-supervised long short term memory (LSTM) network intelligent combination model is proposed. The self-supervised temperature change rate module is proposed to overcome the limit of temperature sensor precision and provide temperature change rate in real time, which further improves the ability of the model to identify navigation error. In the experiment section, the effectiveness of the self-supervised module is verified through ablation experiments under various complex environment. Taking the northward velocity of flight test data as an example, the maximum absolute velocity error before compensation is 1.607 m/s, and 0.357 m/s after. Experimental results prove that the velocity and position error under complex physics environment could be effectively reduced, and the pure inertial navigation performance is therefore improved.
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Journal of Chinese Inertial Technology    2024, 32 (2): 132-138.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.004
Abstract63)      PDF(pc) (1133KB)(75)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 34-41.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.005
Abstract54)      PDF(pc) (1927KB)(80)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 8-15.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.002
Abstract49)      PDF(pc) (2793KB)(65)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 42-51.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.006
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Journal of Chinese Inertial Technology    2024, 32 (1): 64-70.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.009
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Journal of Chinese Inertial Technology    2024, 32 (1): 27-33.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.004
Abstract46)      PDF(pc) (963KB)(150)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 139-145.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.005
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Journal of Chinese Inertial Technology    2024, 32 (2): 125-131.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.003
Abstract44)      PDF(pc) (1193KB)(36)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 163-169.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.008
Abstract42)      PDF(pc) (3696KB)(31)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 58-63.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.008
Abstract40)      PDF(pc) (2072KB)(35)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 79-87.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.011
Abstract40)      PDF(pc) (1148KB)(66)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 205-212.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.013
Abstract37)      PDF(pc) (790KB)(44)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 88-96.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.012
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Journal of Chinese Inertial Technology    2024, 32 (2): 187-195.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.011
Abstract35)      PDF(pc) (3079KB)(27)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 16-26.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.003
Abstract34)      PDF(pc) (688KB)(70)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 71-78.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.010
Abstract33)      PDF(pc) (3354KB)(38)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 180-186.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.010
Abstract29)      PDF(pc) (1543KB)(34)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 170-179.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.009
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Journal of Chinese Inertial Technology    2024, 32 (2): 153-162.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.007
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Journal of Chinese Inertial Technology    2024, 32 (2): 196-204.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.012
Abstract26)      PDF(pc) (1281KB)(63)      
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Journal of Chinese Inertial Technology    2024, 32 (2): 146-152.   DOI: 10.13695/j.cnki.12-1222/o3.2024.02.006
Abstract25)      PDF(pc) (1702KB)(22)      
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Journal of Chinese Inertial Technology    2024, 32 (1): 97-106.   DOI: 10.13695/j.cnki.12-1222/o3.2024.01.013
Abstract19)      PDF(pc) (5181KB)(36)      
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Journal of Chinese Inertial Technology    2023, 31 (12): 1167-1174.   DOI: 10.13695/j.cnki.12-1222/o3.2023.12.001
Abstract16)      PDF(pc) (2265KB)(11)      
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Journal of Chinese Inertial Technology    2023, 31 (9): 849-860.   DOI: 10.13695/j.cnki.12-1222/o3.2023.09.001
Abstract12)      PDF(pc) (5047KB)(24)      
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Journal of Chinese Inertial Technology    2023, 31 (11): 1061-1066.   DOI: 10.13695/j.cnki.12-1222/o3.2023.11.001
Abstract6)      PDF(pc) (821KB)(6)      
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Journal of Chinese Inertial Technology    2023, 31 (10): 955-959.   DOI: 10.13695/j.cnki.12-1222/o3.2023.10.001
Abstract4)      PDF(pc) (702KB)(9)      
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