It’s been more than a year since [Henrik Forstén] built the first iteration of his synthetic-aperture radar (SAR) imaging drone, and he’s certainly been productive in the meantime. Not only …read more
It’s been more than a year since [Henrik Forstén] built the first iteration of his synthetic-aperture radar (SAR) imaging drone, and he’s certainly been productive in the meantime. Not only did he develop a much more powerful autofocus algorithm to clean up the radar images, but he also extended the software to create high-resolution interferometric images.
The main limitation of the original radar system was the GPS, which only had a resolution of about one meter; the autofocus algorithm owed much of its improved clarity to an improved estimation of the drone’s position. A simpler, though more expensive, solution was to add an RTK-capable GPS receiver. RTK (Real-Time Kinematic) receivers use a fixed ground station to constantly transmit a correction signal, letting them reach a couple centimeters of accuracy. Since the drone doesn’t actually need to know its position in real time, it can also use PPK (Post-Processing Kinematic) positioning, which compares recorded GPS signals after the flight to obtain similarly accurate positions.
[Henrik] also implemented a few other hardware improvements, including stabilizing the phase-locked loop used to generate the radar’s frequency sweep. The controller FPGA’s SD card interface had too low a bandwidth to record data in real time, so [Henrik] also implemented a simple, fast compression algorithm to speed that up. Most significantly, he also developed a program for interferometric imaging. The drone flies the same path twice at different altitudes; by comparing phase information from different passes, it’s possible to detect a target’s elevation. Normally, the radar program assumes constant elevation, making tall objects seem to lean toward the radar source; an interferogram, on the other hand, allowed [Henrik] to generate a detailed elevation map.
[Henrik] is no stranger to synthetic aperture radar; we’ve previously covered a bike-mounted iteration and a budget SAR system. If the concepts behind this are still a bit fuzzy, we’ve also covered a guide to making your own SAR setup.
| # | Наименование новости | Тональность | Информативность | Дата публикации |
|---|---|---|---|---|
| 1 | Two-Dimensional Material Now Easier to Manufacture | 0 | 40.14 | 29-09-2026 |
| 2 | Jet Megatextures Demo for ESP32-S3 | 0 | 37.46 | 28-09-2026 |
| 3 | The FPGA Chronicles: Exploring the Tang Nano 20K | 0 | 37.16 | 28-09-2026 |
| 4 | Estonia launches reconnaissance drone over Baltic Sea | 0 | 10.34 | 28-09-2026 |
| 5 | This PICO-8 Handheld is No Fantasy | 0 | 33.71 | 28-09-2026 |
| 6 | ТАСС: Эстония запустила разведывательный дрон над Балтийским морем | 0 | 13.7 | 28-09-2026 |
| 7 | Using the SNES Super FX Chip to Run Super Mario 64 | 0 | 32.73 | 28-09-2026 |
| 8 | Places To Visit: Landschaftspark Duisburg-Nord | 0 | 36.34 | 28-09-2026 |
| 9 | В России разработали передовой радиолокационный спутник наблюдения «Обзор» | 0 | 11.92 | 28-09-2026 |
| 10 | Росреестр переведет картографию на беспилотники 🗺️ К 2030 году ведомство ... | 0 | 11.39 | 26-09-2026 |