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Novel approach for identifying Z-axis drift of RLG based on GA-SVR model 被引量:4
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作者 Guo Wei Xudong Yu Xingwu Long 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第1期115-121,共7页
This paper describes a novel approach for identifying the Z-axis drift of the ring laser gyroscope (RLG) based on ge-netic algorithm (GA) and support vector regression (SVR) in the single-axis rotation inertial ... This paper describes a novel approach for identifying the Z-axis drift of the ring laser gyroscope (RLG) based on ge-netic algorithm (GA) and support vector regression (SVR) in the single-axis rotation inertial navigation system (SRINS). GA is used for selecting the optimal parameters of SVR. The latitude error and the temperature variation during the identification stage are adopted as inputs of GA-SVR. The navigation results show that the proposed GA-SVR model can reach an identification accuracy of 0.000 2 (?)/h for the Z-axis drift of RLG. Compared with the ra-dial basis function-neural network (RBF-NN) model, the GA-SVR model is more effective in identification of the Z-axis drift of RLG. 展开更多
关键词 ring laser gyroscope (RLG) support vector regression (SVR) inertial navigation system (INS) genetic algo-rithm (GA)
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