TY - GEN
T1 - Spatial Characteristics Analysis of Higher-Order Terms in the Ionosphere Based on Optimization Method
AU - Jia, Linhan
AU - Wang, Cheng
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - The paper delves into the investigation of the patterns and optimization algorithms for the correction of higher-order terms in the ionosphere. By analyzing the influence of varying geographical latitudes and hemispheric differences (north versus south) on the delays caused by higher-order ionospheric terms, it is revealed that the lower the latitude, the more pronounced the effect of these higher-order terms becomes. Furthermore, an optimization algorithm based on Slant Total Electron Content (STEC) is proposed in this study. This algorithm leverages high-precision STEC data sources to directly calculate the higher-order ionospheric terms, thereby significantly enhancing the computational accuracy. Experimental results demonstrate that this optimized algorithm is capable of capturing finer details in the variations of higher-order ionospheric effects, validating its effectiveness and reliability. This research holds significant importance for enhancing the accuracy of high-precision GNSS positioning and navigation, particularly in fields requiring stringent precision such as earthquake disaster prediction and plate tectonic movement monitoring, where it presents broad application prospects.
AB - The paper delves into the investigation of the patterns and optimization algorithms for the correction of higher-order terms in the ionosphere. By analyzing the influence of varying geographical latitudes and hemispheric differences (north versus south) on the delays caused by higher-order ionospheric terms, it is revealed that the lower the latitude, the more pronounced the effect of these higher-order terms becomes. Furthermore, an optimization algorithm based on Slant Total Electron Content (STEC) is proposed in this study. This algorithm leverages high-precision STEC data sources to directly calculate the higher-order ionospheric terms, thereby significantly enhancing the computational accuracy. Experimental results demonstrate that this optimized algorithm is capable of capturing finer details in the variations of higher-order ionospheric effects, validating its effectiveness and reliability. This research holds significant importance for enhancing the accuracy of high-precision GNSS positioning and navigation, particularly in fields requiring stringent precision such as earthquake disaster prediction and plate tectonic movement monitoring, where it presents broad application prospects.
KW - higher-order ionospheric effects
KW - slant total electron content (STEC)
KW - spatial characteristics
UR - https://www.scopus.com/pages/publications/85216533203
U2 - 10.1109/CSRSWTC64338.2024.10811472
DO - 10.1109/CSRSWTC64338.2024.10811472
M3 - 会议稿件
AN - SCOPUS:85216533203
T3 - Proceedings - 2024 Cross Strait Radio Science and Wireless Technology Conference, CSRSWTC 2024
BT - Proceedings - 2024 Cross Strait Radio Science and Wireless Technology Conference, CSRSWTC 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 Cross Strait Radio Science and Wireless Technology Conference, CSRSWTC 2024
Y2 - 4 November 2024 through 7 November 2024
ER -