Sorghum — Crop residues (Indirect emissions N2O), annual growth rate in Hungary
Hungary: Sorghum — Crop residues (Indirect emissions N2O), annual growth rate was 173.68 % change on previous year in 2023. ◆ Volatile
Sorghum — Crop residues (Indirect emissions N2O), annual growth rate in Hungary, 1962–2023
Source: Statizoid (derived). Measured in % change on previous year.
Analysis
In 2023, sorghum — crop residues (indirect emissions n2o), annual growth rate in Hungary stood at 173.68 % change on previous year.
Compared with earlier readings it is up 527.5% on the previous year and up 768.4% over ten years.
Over the whole period, sorghum — crop residues (indirect emissions n2o), annual growth rate in Hungary peaked at 250 % change on previous year in 2011 and was at its lowest, -66.67 % change on previous year, in 1965.
That places Hungary 1st out of 111 countries with data for 2023, putting it in the top 10%.
The series is highly variable year to year, so single readings are best treated with caution.
Sorghum — Crop residues (Indirect emissions N2O), annual growth rate in Hungary, year by year
| Year | % change on previous year | Change |
|---|---|---|
| 1962 | 66.67 % change on previous year | — |
| 1963 | 0 % change on previous year | -100.0% |
| 1964 | 20 % change on previous year | — |
| 1965 | -66.67 % change on previous year | -433.3% |
| 1966 | 0 % change on previous year | -100.0% |
| 1967 | -50 % change on previous year | — |
| 1968 | 0 % change on previous year | -100.0% |
| 1969 | 0 % change on previous year | — |
| 1970 | 0 % change on previous year | — |
| 1971 | 0 % change on previous year | — |
| 1972 | 0 % change on previous year | — |
| 1973 | 100 % change on previous year | — |
| 1974 | 0 % change on previous year | -100.0% |
| 1975 | 150 % change on previous year | — |
| 1976 | 0 % change on previous year | -100.0% |
| 1977 | 100 % change on previous year | — |
| 1978 | 0 % change on previous year | -100.0% |
| 1979 | 0 % change on previous year | — |
| 1980 | -30 % change on previous year | — |
| 1981 | 0 % change on previous year | -100.0% |
| 1982 | 0 % change on previous year | — |
| 1983 | 0 % change on previous year | — |
| 1984 | -14.29 % change on previous year | — |
| 1985 | -33.33 % change on previous year | +133.3% |
| 1986 | 100 % change on previous year | -400.0% |
| 1987 | 62.5 % change on previous year | -37.5% |
| 1988 | 38.46 % change on previous year | -38.5% |
| 1989 | 38.89 % change on previous year | +1.1% |
| 1990 | -48 % change on previous year | -223.4% |
| 1991 | 61.54 % change on previous year | -228.2% |
| 1992 | -47.62 % change on previous year | -177.4% |
| 1993 | -27.27 % change on previous year | -42.7% |
| 1994 | -25 % change on previous year | -8.3% |
| 1995 | -16.67 % change on previous year | -33.3% |
| 1996 | 0 % change on previous year | -100.0% |
| 1997 | 0 % change on previous year | — |
| 1998 | -20 % change on previous year | — |
| 1999 | 0 % change on previous year | -100.0% |
| 2000 | -25 % change on previous year | — |
| 2001 | 0 % change on previous year | -100.0% |
| 2002 | 0 % change on previous year | — |
| 2003 | 0 % change on previous year | — |
| 2004 | 66.67 % change on previous year | — |
| 2005 | 0 % change on previous year | -100.0% |
| 2006 | 0 % change on previous year | — |
| 2007 | -20 % change on previous year | — |
| 2008 | 25 % change on previous year | -225.0% |
| 2009 | -40 % change on previous year | -260.0% |
| 2010 | -33.33 % change on previous year | -16.7% |
| 2011 | 250 % change on previous year | -850.0% |
| 2012 | -28.57 % change on previous year | -111.4% |
| 2013 | 20 % change on previous year | -170.0% |
| 2014 | 16.67 % change on previous year | -16.7% |
| 2015 | -14.29 % change on previous year | -185.7% |
| 2016 | 0 % change on previous year | -100.0% |
| 2017 | 33.33 % change on previous year | — |
| 2018 | 75 % change on previous year | +125.0% |
| 2019 | 185.71 % change on previous year | +147.6% |
| 2020 | -12.5 % change on previous year | -106.7% |
| 2021 | -8.57 % change on previous year | -31.4% |
| 2022 | -40.62 % change on previous year | +374.0% |
| 2023 | 173.68 % change on previous year | -527.5% |
Hungary compared with similar countries
- Hungary's 173.68 % change on previous year is above the median for high income countries, which is 13.18 % change on previous year, 13.2× the median. (16 countries reporting)
- Hungary's 173.68 % change on previous year is above the median for Europe & Central Asia, which is 29.17 % change on previous year, 6.0× the median. (14 countries reporting)
Averages by decade
| Decade | Average | Lowest | Highest | Years |
|---|---|---|---|---|
| 1960s | -3.75 % change on previous year | -66.67 % change on previous year | 66.67 % change on previous year | 8 |
| 1970s | 35 % change on previous year | 0 % change on previous year | 150 % change on previous year | 10 |
| 1980s | 16.22 % change on previous year | -33.33 % change on previous year | 100 % change on previous year | 10 |
| 1990s | -12.3 % change on previous year | -48 % change on previous year | 61.54 % change on previous year | 10 |
| 2000s | 0.6667 % change on previous year | -40 % change on previous year | 66.67 % change on previous year | 10 |
| 2010s | 50.45 % change on previous year | -33.33 % change on previous year | 250 % change on previous year | 10 |
| 2020s | 28 % change on previous year | -40.62 % change on previous year | 173.68 % change on previous year | 4 |
Countries ranked near Hungary
More climate change data for Hungary
- Nutrient nitrogen N (total) — Synthetic fertilizers (Agricultural) 285.10 million kg (2050)
- Emissions from livestock — Emissions (CO2eq) 3,529 kt (2050)
- Emissions from livestock — Emissions (CO2eq) from N2O 964.55 kt (2050)
- Emissions from livestock — Emissions (CO2eq) from CH4 2,564 kt (2050)
- Emissions from livestock — Emissions 3.64 kt (2050)
- Emissions from livestock — Emissions 91.58 kt (2050)
- Emissions from crops — Emissions (CO2eq) 2,555 kt (2050)
- Emissions from crops — Emissions (CO2eq) from N2O 2,421 kt (2050)
- Emissions from crops — Emissions (CO2eq) from CH4 134.6 kt (2050)
- Emissions from crops — Emissions 9.13 kt (2050)
Frequently asked questions
- What is sorghum — crop residues (indirect emissions n2o), annual growth rate in Hungary?
- Sorghum — crop residues (indirect emissions n2o), annual growth rate in Hungary was 173.68 % change on previous year in 2023, according to Statizoid (derived).
- What is the highest sorghum — crop residues (indirect emissions n2o), annual growth rate recorded in Hungary?
- The highest recorded value was 250 % change on previous year in 2011.
- What is the lowest sorghum — crop residues (indirect emissions n2o), annual growth rate recorded in Hungary?
- The lowest recorded value was -66.67 % change on previous year in 1965.
- How does Hungary rank for sorghum — crop residues (indirect emissions n2o), annual growth rate?
- Hungary ranks 1st out of 111 countries with data for 2023.
- Is sorghum — crop residues (indirect emissions n2o), annual growth rate rising or falling in Hungary?
- Over the last ten years it is up 768.4%. The long-run trend across the full record is volatile.
- Where does this Hungary data come from?
- The figures come from Statizoid (derived), published as part of Sorghum — Crop residues (Indirect emissions N2O), annual growth rate. Statizoid updates them automatically from the source API.
Download this data
CSV · JSON — 62 observations, free to reuse under Derived by Statizoid from the sources named on the page.
How this figure is calculated
The year-on-year percentage change in Sorghum — Crop residues (Indirect emissions N2O). Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.
Computed from
- Sorghum — Crop residues Food and Agriculture Organization of the United Nations
Statizoid computes this series; the underlying measurements belong to the publishers named above. The arithmetic is applied to every country and year where both inputs report, and nothing is estimated unless the page says so.
About this data
The year-on-year percentage change in Sorghum — Crop residues (Indirect emissions N2O). Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.