Lebanon vs Russia: Cumulative CO₂ emissions from land-use change, annual growth rate
Lebanon
0.3887 % change on previous year
in 2024
Russia
0.3597 % change on previous year
in 2024
Lebanon rank
78th
Russia rank
81st
Cumulative CO₂ emissions from land-use change, annual growth rate over time
- Lebanon
- Russia
How they compare
Lebanon currently reports 0.3887 % change on previous year against 0.3597 % change on previous year in Russia, a difference of 0.029 % change on previous year.
That makes Lebanon's figure about 1.1 times Russia's.
The two have swapped places 24 times across 174 shared years of data; in 1851 it was Lebanon ahead.
Lebanon ranks 78th and Russia ranks 81st of 188 countries.
Across the 18 decades both report, Lebanon averaged higher in 7 and Russia in 11.
Head to head by decade
| Decade | Lebanon | Russia | Difference | Ahead |
|---|---|---|---|---|
| 1850s | 32.01 % change on previous year | 32.25 % change on previous year | 0.2444 % change on previous year | Russia |
| 1860s | 6.9 % change on previous year | 6.95 % change on previous year | 0.0428 % change on previous year | Russia |
| 1870s | 9.75 % change on previous year | 4.7 % change on previous year | 5.05 % change on previous year | Lebanon |
| 1880s | 2.43 % change on previous year | 3.66 % change on previous year | 1.23 % change on previous year | Russia |
| 1890s | 1.01 % change on previous year | 3.25 % change on previous year | 2.24 % change on previous year | Russia |
| 1900s | -0.7112 % change on previous year | 3.08 % change on previous year | 3.79 % change on previous year | Russia |
| 1910s | -2.19 % change on previous year | 1.43 % change on previous year | 3.62 % change on previous year | Russia |
| 1920s | 3.86 % change on previous year | 1.3 % change on previous year | 2.57 % change on previous year | Lebanon |
| 1930s | 5.44 % change on previous year | 1.94 % change on previous year | 3.5 % change on previous year | Lebanon |
| 1940s | 3.42 % change on previous year | 0.5171 % change on previous year | 2.9 % change on previous year | Lebanon |
| 1950s | 2 % change on previous year | 0.751 % change on previous year | 1.25 % change on previous year | Lebanon |
| 1960s | 2.23 % change on previous year | 0.6205 % change on previous year | 1.61 % change on previous year | Lebanon |
| 1970s | 0.7718 % change on previous year | 0.4458 % change on previous year | 0.326 % change on previous year | Lebanon |
| 1980s | -0.6916 % change on previous year | 0.3978 % change on previous year | 1.09 % change on previous year | Russia |
| 1990s | -0.5269 % change on previous year | 0.1791 % change on previous year | 0.706 % change on previous year | Russia |
| 2000s | -2.28 % change on previous year | 0.0383 % change on previous year | 2.32 % change on previous year | Russia |
| 2010s | 0.0861 % change on previous year | 0.3069 % change on previous year | 0.2208 % change on previous year | Russia |
| 2020s | 0.2049 % change on previous year | 0.2996 % change on previous year | 0.0948 % change on previous year | Russia |
Averages of every year both report within each decade.
Frequently asked questions
- Which has higher cumulative co₂ emissions from land-use change, annual growth rate, Lebanon or Russia?
- Lebanon, at 0.3887 % change on previous year against 0.3597 % change on previous year in Russia as of 2024.
- What is the difference in cumulative co₂ emissions from land-use change, annual growth rate between Lebanon and Russia?
- 0.029 % change on previous year, with Lebanon ahead.
- How many years of comparable data are there for Lebanon and Russia?
- 174 years are reported by both, from 1851 to 2024.
- How do Lebanon and Russia rank globally for cumulative co₂ emissions from land-use change, annual growth rate?
- Lebanon ranks 78th and Russia ranks 81st of 188 countries.
- Where does this data come from?
- Statizoid (derived), published as Cumulative CO₂ emissions from land-use change, annual growth rate. Statizoid refreshes it automatically from the source and publishes the full history for both places.
Individual pages
About this data
The year-on-year percentage change in Cumulative CO₂ emissions from land-use change. Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.