FPGA (Field Programmable Gata Array)-based unscented kalman filter system and parallel implementation method
An unscented Kalman and cross-covariance technology, applied in the field of signal processing, can solve the problems of reduced computing speed and difficult hardware implementation, and achieve the effect of increasing speed, easy hardware implementation, and reducing matrix dimension
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[0039] refer to figure 1 , the FPGA-based unscented Kalman filtering system of the present invention comprises: covariance matrix Cholesky decomposition module A, Sigma point generation module B, time update module C, observation prediction module D, partial mean value and covariance matrix calculation module E, overall mean value Calculation module F, overall covariance matrix calculation module G, observation and prediction covariance matrix inversion module H, gain calculation module I and state quantity estimation and state covariance matrix estimation module J. Among them, module B contains K Sigma points to generate sub-module B i , i=1, 2, ..., K, B 1 , B 2 ,...,BK Using K parallel computing unit structure, module C contains K time update sub-modules C i , i=1, 2, ..., K, C 1 , C 2 ,...,C K Using K parallel computing unit structure, module D contains K observation and prediction sub-modules D i , i=1, 2, ..., K, D 1 ,D 2 ,...,D K Using K parallel operation uni...
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