摘要(英) |
Traditionally, radio receivers are completed by designing electronic circuits. However, with the increase of signal design complexity, the speed of electronic circuit design has gradually been unable to keep up. But, by the improvement of chip computing performance, and the development of wideband antenna, the concept of software-defined radio (SDR) has been developed. Advantages of SDR is its flexibility, only the part of the digital signal processing that needs to be changed to match the target signal to receive the target signal.
The GALILEO E1-band SDR algorithm in this thesis is developed based on the previous Global Positioning System L1-band SDR algorithm. This SDR algorithm to acquire and track GALILEO signals mainly through two technologies, Ambiguity Function and Coherent Integration. Use ambiguity function to find out the chip delay and Doppler shift of signal, and use coherent integration to improve the signal-to-noise ratio.
The results calculated by the SDR are compared and verified with the RINEX measurement values of the NASA JPL NCUT standard station. After verification, it is determined that the SDR can successfully receive the signal of the GALILEO E1-band, but it is still necessary to increase the stability of the signal by adding phase measurement to the algorithm. |
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