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A Fast Storage Method for Drone-Borne Passive Microwave Radiation Measurement
Xiangkun Wan1,2, Xiaofeng Li1, Tao Jiang1
1Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, No. 4888 Shengbei Street, Gaoxinbei District, Changchun 130102, China.
Sensors (Basel, Switzerland)
|October 26, 2021
Summary
A novel dual polling write method (DPSM) significantly enhances data storage for drone-borne microwave radiometers. This method reduces storage time, enabling continuous data acquisition for radio frequency interference detection.
Area of Science:
- Electrical Engineering
- Aerospace Engineering
- Data Storage Technologies
Background:
- Drone-borne microwave radiometers require high-frequency, continuous data acquisition for radio frequency interference (RFI) detection and mitigation.
- Existing data storage methods are insufficient for handling the large data volumes generated by these instruments.
- This limitation hinders effective RFI analysis and mitigation strategies in airborne remote sensing applications.
Purpose of the Study:
- To propose and validate a new data storage method, the dual polling write method (DPSM), for high-speed, continuous data acquisition.
- To address the limitations of existing storage techniques in meeting the demands of drone-borne microwave radiometers.
- To enable efficient data logging for RFI detection and mitigation in real-time airborne scenarios.
Main Methods:
- Implementation of a dual polling write method (DPSM) for secure digital cards.
- Utilized a multitask framework based on STM32 microcontroller (MCU) with timer-triggered operations.
- Modified the card programming structure from query waiting to polling query flag bits, employing time-sharing and parallel processing to simulate multithreading.
Main Results:
- Reduced the overall storage procedure time from 4000 microseconds to 200-400 microseconds.
- Significantly decreased card programming time: from 3000 µs (first block) and 1000 µs (subsequent blocks) to 17-174 µs and 18-71 µs, respectively.
- Eliminated delay in the entire sampling cycle, reducing it from 3942 microseconds to 0 microseconds.
Conclusions:
- The proposed DPSM effectively meets the stringent data storage requirements of drone-borne microwave radiometers.
- The method enables high-speed, continuous data acquisition crucial for RFI detection and mitigation.
- DPSM is a viable solution for high-speed data storage in other demanding applications beyond airborne radiometry.

