Georgia vs Switzerland: Nutrient nitrogen N (total) — Agricultural Use, gaps filled
Georgia
41,800 t
in 2024
Switzerland
39,283 t
in 2024
Georgia rank
103rd
Switzerland rank
104th
Nutrient nitrogen N (total) — Agricultural Use, gaps filled over time
- Georgia
- Switzerland
How they compare
Georgia currently reports 41,800 t against 39,283 t in Switzerland, a difference of 2,517 t.
That makes Georgia's figure about 1.1 times Switzerland's.
The two have swapped places 1 time across 33 shared years of data; in 1992 it was Switzerland ahead.
Georgia ranks 103rd and Switzerland ranks 104th of 212 countries.
Across the 4 decades both report, Georgia averaged higher in 1 and Switzerland in 3.
Head to head by decade
| Decade | Georgia | Switzerland | Difference | Ahead |
|---|---|---|---|---|
| 1990s | 36,450 t | 61,125 t | 24,675 t | Switzerland |
| 2000s | 21,363 t | 49,230 t | 27,867 t | Switzerland |
| 2010s | 16,722 t | 46,826 t | 30,104 t | Switzerland |
| 2020s | 42,840 t | 40,248 t | 2,592 t | Georgia |
Averages of every year both report within each decade.
Frequently asked questions
- Which has higher nutrient nitrogen n (total) — agricultural use, gaps filled, Georgia or Switzerland?
- Georgia, at 41,800 t against 39,283 t in Switzerland as of 2024.
- What is the difference in nutrient nitrogen n (total) — agricultural use, gaps filled between Georgia and Switzerland?
- 2,517 t, with Georgia ahead.
- How many years of comparable data are there for Georgia and Switzerland?
- 33 years are reported by both, from 1992 to 2024.
- How do Georgia and Switzerland rank globally for nutrient nitrogen n (total) — agricultural use, gaps filled?
- Georgia ranks 103rd and Switzerland ranks 104th of 212 countries.
- Where does this data come from?
- Statizoid (derived), published as Nutrient nitrogen N (total) — Agricultural Use, gaps filled. Statizoid refreshes it automatically from the source and publishes the full history for both places.
Individual pages
About this data
Nutrient nitrogen N (total) — Agricultural Use with 52 missing years estimated by linear interpolation between the nearest real observations. Only gaps of 4 years or fewer are filled, and never beyond the first or last actual measurement — these are filled holes, not forecasts.