Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia

Western Asia: Sugar cane — Burning crop residues (Emissions CH4), annual growth rate was 25 % change on previous year in 2023. ◆ Volatile

Latest (2023)
25 % change on previous year
Change on year
down 25.0%
Rank
1st
of 30 groups
All-time high
300 % change on previous year
in 2008
All-time low
-100 % change on previous year
in 2005
Years of data
60
1962–2023

Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia, 1962–2023

-1000100200300196219922023

Source: Statizoid (derived). Measured in % change on previous year.

Analysis

The most recent figure for sugar cane — burning crop residues (emissions ch4), annual growth rate in Western Asia is 25 % change on previous year, measured in 2023.

Compared with earlier readings it is down 25.0% on the previous year and up 137.5% over five years.

Over the whole period, sugar cane — burning crop residues (emissions ch4), annual growth rate in Western Asia peaked at 300 % change on previous year in 2008 and was at its lowest, -100 % change on previous year, in 2005.

That places Western Asia 1st out of 30 groups 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.

Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia, year by year

Annual values for Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia, 1962 to 2023.
Year % change on previous year Change
1962 0 % change on previous year —
1963 0 % change on previous year —
1964 0 % change on previous year —
1965 -9.09 % change on previous year —
1966 0 % change on previous year -100.0%
1967 -10 % change on previous year —
1968 11.11 % change on previous year -211.1%
1969 -10 % change on previous year -190.0%
1970 266.67 % change on previous year -2766.7%
1971 93.94 % change on previous year -64.8%
1972 15.62 % change on previous year -83.4%
1973 -36.49 % change on previous year -333.5%
1974 10.64 % change on previous year -129.2%
1975 32.69 % change on previous year +207.3%
1976 -21.74 % change on previous year -166.5%
1977 7.41 % change on previous year -134.1%
1978 31.03 % change on previous year +319.0%
1979 -1.32 % change on previous year -104.2%
1980 -2.67 % change on previous year +102.7%
1981 -17.81 % change on previous year +567.8%
1982 0 % change on previous year -100.0%
1983 -11.67 % change on previous year —
1984 49.06 % change on previous year -520.5%
1985 -34.18 % change on previous year -169.7%
1986 -53.85 % change on previous year +57.6%
1987 37.5 % change on previous year -169.6%
1988 -21.21 % change on previous year -156.6%
1989 73.08 % change on previous year -444.5%
1990 11.11 % change on previous year -84.8%
1991 0 % change on previous year -100.0%
1992 4 % change on previous year —
1993 23.08 % change on previous year +476.9%
1994 3.12 % change on previous year -86.5%
1995 10.61 % change on previous year +239.4%
1996 5.48 % change on previous year -48.3%
1997 2.6 % change on previous year -52.6%
1998 15.19 % change on previous year +484.8%
1999 0 % change on previous year -100.0%
2000 0 % change on previous year —
2001 6.59 % change on previous year —
2002 17.53 % change on previous year +165.8%
2003 -99.12 % change on previous year -665.6%
2004 0 % change on previous year -100.0%
2005 -100 % change on previous year —
2008 300 % change on previous year -400.0%
2009 25 % change on previous year -91.7%
2010 140 % change on previous year +460.0%
2011 -8.33 % change on previous year -106.0%
2012 -9.09 % change on previous year +9.1%
2013 0 % change on previous year -100.0%
2014 20 % change on previous year —
2015 8.33 % change on previous year -58.3%
2016 0 % change on previous year -100.0%
2017 -30.77 % change on previous year —
2018 -66.67 % change on previous year +116.7%
2019 0 % change on previous year -100.0%
2020 -33.33 % change on previous year —
2021 50 % change on previous year -250.0%
2022 33.33 % change on previous year -33.3%
2023 25 % change on previous year -25.0%

Biggest year-on-year movements

Years where Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia changed far more than this series normally does. A large move can be a real event or a change in how the figure was measured — the source note below says who published it.

YearChange FromTo
1970 +2766.7% -10 % change on previous year 266.67 % change on previous year

Averages by decade

DecadeAverage LowestHighest Years
1960s -2.25 % change on previous year -10 % change on previous year 11.11 % change on previous year 8
1970s 39.85 % change on previous year -36.49 % change on previous year 266.67 % change on previous year 10
1980s 1.83 % change on previous year -53.85 % change on previous year 73.08 % change on previous year 10
1990s 7.52 % change on previous year 0 % change on previous year 23.08 % change on previous year 10
2000s 18.75 % change on previous year -100 % change on previous year 300 % change on previous year 8
2010s 5.35 % change on previous year -66.67 % change on previous year 140 % change on previous year 10
2020s 18.75 % change on previous year -33.33 % change on previous year 50 % change on previous year 4

Countries ranked near Western Asia

  1. 1 Puerto Rico 218.18 % change on previous year compare
  2. 2 French Guiana 200 % change on previous year compare
  3. 3 Grenada 50 % change on previous year compare
  4. 4 Oman 25 % change on previous year compare

See the full ranking of 144 places →

More climate change data for Western Asia

All data for Western Asia →

Frequently asked questions

What is sugar cane — burning crop residues (emissions ch4), annual growth rate in Western Asia?
Sugar cane — burning crop residues (emissions ch4), annual growth rate in Western Asia was 25 % change on previous year in 2023, according to Statizoid (derived).
What is the highest sugar cane — burning crop residues (emissions ch4), annual growth rate recorded in Western Asia?
The highest recorded value was 300 % change on previous year in 2008.
What is the lowest sugar cane — burning crop residues (emissions ch4), annual growth rate recorded in Western Asia?
The lowest recorded value was -100 % change on previous year in 2005.
How does Western Asia rank for sugar cane — burning crop residues (emissions ch4), annual growth rate?
Western Asia ranks 1st out of 30 groups with data for 2023.
Where does this Western Asia data come from?
The figures come from Statizoid (derived), published as part of Sugar cane — Burning crop residues (Emissions CH4), annual growth rate. Statizoid updates them automatically from the source API.

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CSV · JSON — 60 observations, free to reuse under Derived by Statizoid from the sources named on the page.

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Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia. Statizoid, drawing on Statizoid (derived). Retrieved 11 October 2026, from https://climate.statizoid.com/stat/sugar-cane-burning-crop-residues-emissions-ch4-annual-growth-rate/western-asia/

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<a href="https://climate.statizoid.com/stat/sugar-cane-burning-crop-residues-emissions-ch4-annual-growth-rate/western-asia/">Sugar cane — Burning crop residues (Emissions CH4), annual growth rate in Western Asia</a> — Statizoid

How this figure is calculated

The year-on-year percentage change in Sugar cane — Burning crop residues (Emissions CH4). Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.

Computed from

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

Indicator
Sugar cane — Burning crop residues (Emissions CH4), annual growth rate
Unit
% change on previous year
Source
Statizoid (derived)
Licence
Derived by Statizoid from the sources named on the page
Coverage
144 places, 7,986 data points, 1962–2023
Last refreshed

The year-on-year percentage change in Sugar cane — Burning crop residues (Emissions CH4). Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.