Design and Implementation of Digital Array Radar Signal Generation, Acquisition, and Processing Based on RFSoC

Проектирование и реализация генерации, приёма и обработки сигналов цифровой фазированной антенны на основе RFSoC
Qi Zhang, Xingyu Lu, Jianchao Yang, Yuxuan Tian, Shichen Liu, Zhichuan Wang, Yulu Gong, Lunhao Duan
2025-05-23

Constant False Alarm Rate (CFAR)Digital Array Radar (DAR)Digital Beamforming (DBF)Finite State Machine (FSM)Moving Target Detection (MTD)Programmable Logic (PL) and Processing System (PS) heterogeneous computingRF data converterRFSoC (Radio Frequency System-on-Chip)cascaded processing pipelinemulti-channel synchronized signal generation and acquisitionpulse compressionsoftware-defined miniaturized radarsum-and-difference amplitude comparison monopulse angle measurement
In recent years, research achievements in Digital Array Radar (DAR) have become increasingly prominent. However, traditional radar signal acquisition and processing frameworks relying on combinations of Radio Frequency (RF) front-end circuits and Field-Programmable Gate Array (FPGA) signal processing boards still exhibit inherent limitations, making it difficult to meet modern radar systems’ comprehensive requirements for miniaturization, high flexibility, real-time operation, and multi-channel cooperative processing. To address these challenges, this paper proposes a full-process architecture for DAR signal generation, acquisition, and processing based on Radio Frequency System-on-Chip (RFSoC) technology. For radar signal generation and acquisition, RFSoC’s built-in RF data converter and a Finite State Machine (FSM) design are utilized to construct an integrated architecture enabling synchronized signal generation and acquisition. In signal processing, leveraging the heterogeneous computing characteristics of the Programmable Logic (PL) and Processing System (PS), a task division strategy is implemented to establish a cascaded processing pipeline. This pipeline sequentially performs pulse compression, Moving Target Detection (MTD), Digital Beamforming (DBF), Constant False Alarm Rate (CFAR) detection, target integration, and sum-and-difference amplitude comparison monopulse angle measurement. Experimental results demonstrate the proposed architecture’s capability to achieve stable tracking of dynamic targets in complex field environments. The solution provides a practical technical pathway for engineering next-generation software-defined and miniaturized digital array radar systems.
1
A full-process DAR architecture based on RFSoC is proposed to integrate signal generation, acquisition, and processing for digital array radar.
2
A task-division strategy exploiting PL and PS heterogeneous computing implements a cascaded processing pipeline for real-time processing.
3
Experimental results show the architecture can stably track dynamic targets in complex field environments.
4
RFSoC built-in RF data converters combined with an FSM design enable synchronized, integrated radar signal generation and acquisition.
5
The RFSoC-based solution addresses limitations of traditional RF front-end plus FPGA setups, enabling miniaturization, higher flexibility, real-time operation, and multi-channel cooperative processing.
6
The processing pipeline performs pulse compression, MTD, DBF, CFAR detection, target integration, and sum-and-difference monopulse angle measurement sequentially.

Digital Array Radar signal generation, acquisition, and processing system implemented on RFSoC

Design and implementation of a full-process architecture enabling synchronized multi-channel signal generation and acquisition and cascaded real-time signal processing (pulse compression, MTD, DBF, CFAR, target integration, monopulse angle measurement) exploiting RFSoC's integrated RF data converters and PL/PS heterogeneous computing

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2025-05-23
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Qi Zhang
Xingyu Lu
Jianchao Yang
Yuxuan Tian
Shichen Liu
Zhichuan Wang
Yulu Gong
Lunhao Duan
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