Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid in Indonesia

Indonesia: Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid was 1,044 in 2019. ◆ Volatile

Latest (2019)
1,044
Change on year
up 422.8%
World rank
9th
of 209 countries
All-time high
11,273
in 1997
All-time low
21.18
in 2017
Years of data
30
1990–2019

Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid in Indonesia, 1990–2019

02.5k5.0k7.5k10.0k12.5k1990200420191990: 1.3k1991: 1.3k1992: 1.3k1993: 1.3k1994: 1.3k1995: 1.3k1996: 6051997: 11.3k1998: 7.3k1999: 894.52000: 260.82001: 55.72002: 1.1k2003: 249.12004: 1.1k2005: 375.22006: 1.4k2007: 121.52008: 74.22009: 910.62010: 39.62011: 265.42012: 410.82013: 204.52014: 968.22015: 1.6k2016: 126.22017: 21.22018: 199.62019: 1.0k

Source: FAO, FAOSTAT Climate Change, Emissions Totals, http://www.fao.org/faostat/en/#data/GT.

Analysis

The most recent figure for emission totals - emissions (co2eq) from n2o (ar5) - fires in humid in Indonesia is 1,044, measured in 2019.

The figure is up 422.8% on the previous year and up 14.6% over ten years.

Over the whole period, emission totals - emissions (co2eq) from n2o (ar5) - fires in humid in Indonesia peaked at 11,273 in 1997 and was at its lowest, 21.18, in 2017.

That places Indonesia 9th out of 209 countries with data for 2019, putting it in the top 10%.

The series is highly variable year to year, so single readings are best treated with caution.

Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid in Indonesia, year by year

Annual values for Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid tropical forests in Indonesia, 1990 to 2019.
Year Value Change
1990 1,274
1991 1,274 +0.0%
1992 1,274 +0.0%
1993 1,274 +0.0%
1994 1,274 +0.0%
1995 1,274 +0.0%
1996 605 -52.5%
1997 11,273 +1763.3%
1998 7,301 -35.2%
1999 894.5 -87.7%
2000 260.84 -70.8%
2001 55.66 -78.7%
2002 1,071 +1823.9%
2003 249.12 -76.7%
2004 1,130 +353.6%
2005 375.19 -66.8%
2006 1,421 +278.7%
2007 121.45 -91.5%
2008 74.23 -38.9%
2009 910.6 +1126.8%
2010 39.65 -95.6%
2011 265.39 +569.4%
2012 410.84 +54.8%
2013 204.46 -50.2%
2014 968.22 +373.5%
2015 1,560 +61.2%
2016 126.18 -91.9%
2017 21.18 -83.2%
2018 199.6 +842.4%
2019 1,044 +422.8%

Averages by decade

DecadeAverage LowestHighest Years
1990s 2,772 605 11,273 10
2000s 566.88 55.66 1,421 10
2010s 483.94 21.18 1,560 10

Countries ranked near Indonesia

  1. 6 Myanmar 2,176 compare
  2. 7 Mozambique 1,950 compare
  3. 8 Tanzania, United Republic of 1,835 compare
  4. 10 Cambodia 721.53 compare
  5. 11 Thailand 618.48 compare
  6. 12 Nepal 524.3 compare

See the full ranking of 209 places →

More reference data data for Indonesia

All data for Indonesia →

Frequently asked questions

What is emission totals - emissions (co2eq) from n2o (ar5) - fires in humid in Indonesia?
Emission totals - emissions (co2eq) from n2o (ar5) - fires in humid in Indonesia was 1,044 in 2019, according to FAO, FAOSTAT Climate Change, Emissions Totals, http://www.fao.org/faostat/en/#data/GT.
What is the highest emission totals - emissions (co2eq) from n2o (ar5) - fires in humid recorded in Indonesia?
The highest recorded value was 11,273 in 1997.
What is the lowest emission totals - emissions (co2eq) from n2o (ar5) - fires in humid recorded in Indonesia?
The lowest recorded value was 21.18 in 2017.
How does Indonesia rank for emission totals - emissions (co2eq) from n2o (ar5) - fires in humid?
Indonesia ranks 9th out of 209 countries with data for 2019.
Is emission totals - emissions (co2eq) from n2o (ar5) - fires in humid rising or falling in Indonesia?
Over the last ten years it is up 14.6%. The long-run trend across the full record is volatile.
Where does this Indonesia data come from?
The figures come from FAO, FAOSTAT Climate Change, Emissions Totals, http://www.fao.org/faostat/en/#data/GT, published as part of Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid tropical forests. Statizoid updates them automatically from the source API.

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Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid in Indonesia. Statizoid, drawing on FAO, FAOSTAT Climate Change, Emissions Totals, http://www.fao.org/faostat/en/#data/GT. Retrieved 26 August 2026, from https://reference.statizoid.com/stat/emission-totals-emissions-co2eq-from-n2o-ar5-fires-in-humid-tropical-forests/indonesia/

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About this data

Indicator
Emission Totals - Emissions (CO2eq) from N2O (AR5) - Fires in humid tropical forests
Source
FAO, FAOSTAT Climate Change, Emissions Totals, http://www.fao.org/faostat/en/#data/GT
Licence
CC BY 4.0 (World Bank Open Data)
Coverage
209 places, 6,119 data points, 1990–2019
Last refreshed

The FAOSTAT domain Emissions Totals summarizes the greenhouse gas (GHG) emissions generated from agriculture and forest land. They consist of methane (CH4), nitrous oxide (N2O) and carbon dioxide (CO2) emissions from crop and livestock activities, forest management and include land use and land use change processes. Data are computed at Tier 1 of the IPCC Guidelines for National greenhouse gas (GHG) Inventories (IPCC, 1996; 1997; 2000; 2002; 2006; 2014). Estimates are available by country, with global coverage for the period 1961–2019 with projections for 2030 and 2050 for some categories of emissions or 1990–2019 for others. The database is updated annually. The FAOSTAT domain Emissions Totals disseminates information estimates of CH4, N2O and CO2 emissions/removals and their aggregates in CO2eq in units of kilotonnes (kt, or 106 kg). The latter are computed by using the IPCC Fifth Assessment report global warming potentials, AR5 (IPCC, 2014).