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- Jul 30, 2026
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Short answer: Place a vertically polarized 1090 MHz antenna outdoors, as high as safely practical, with a clear horizon and short low-loss coax. ADS-B is largely line-of-sight, so obstructions and feedline loss usually matter more than small changes in antenna gain.
Before you start
- Use 1090 MHz Mode S and ADS-B as the initial target unless the project specifically requires 978 MHz UAT in a region where it is used.
- Record antenna type and height, coax length, receiver gain, decoder version and a fixed observation window before comparing changes.
Step-by-step method
- Step 1: Map nearby buildings, roof lines, trees and metalwork. Choose a position with the widest unobstructed azimuth rather than simply the highest indoor shelf.
- Step 2: Keep the antenna vertical and away from metal poles unless its design uses them. Route coax with weatherproof connectors, strain relief and a drip loop.
- Step 3: Estimate cable loss at 1090 MHz. If a long run is unavoidable, use lower-loss coax or a suitable filtered antenna-side LNA powered safely.
- Step 4: Record a 24-hour baseline before and after moving the antenna with unchanged decoder gain. Compare polar plots, aircraft and message counts by direction.
Concrete example
Moving an antenna from an upstairs window to a roof position may improve one blocked direction dramatically even with the same coax. Replacing 10 m of lossy small coax can recover several decibels without changing the antenna.How to judge the result
The best placement improves the coverage plot across repeatable directions and increases valid messages over full-day comparisons. One exceptional aircraft is not enough evidence.What to record
- Compare unique aircraft, maximum range, messages per second and the shape of the polar coverage plot over equal time periods.
- Use at least 24 hours for a meaningful station baseline because traffic direction and density vary throughout the day.
- A higher message rate with fewer distant aircraft can indicate overload, local traffic changes or a different gain compromise rather than a universal improvement.
Common mistakes
- Changing several hardware, software or RF variables at once, which removes the controlled comparison needed to identify the cause.
- Treating one autoscaled screenshot or one unusually good result as proof without recording the settings and repeating the test.
- Mounting directly beside a metal mast or under a conductive roof can distort the pattern and erase the benefit of extra height.