GHG emissions from food systems, by gas (Mt CO2 eq) - CO2 in Latvia
Latvia: GHG emissions from food systems, by gas (Mt CO2 eq) - CO2 was 4,627 in 2015. ▲ Rising
GHG emissions from food systems, by gas (Mt CO2 eq) - CO2 in Latvia, 1990–2015
Source: Crippa, M., Solazzo, E., Guizzardi, D., Monforti-Ferrario, F., Tubiello, F.N. and Leip, A. EDGAR-FOOD data. Figshare, doi:10.6084/m9.figshare.13476666 (2021).
Analysis
Latvia recorded 4,627 for ghg emissions from food systems, by gas (mt co2 eq) - co2 in 2015.
Compared with earlier readings it is down 1.2% on the previous year and up 0.5% over ten years.
Over the whole period, ghg emissions from food systems, by gas (mt co2 eq) - co2 in Latvia peaked at 7,312 in 2010 and was at its lowest, 2,656, in 1991.
That places Latvia 109th out of 203 countries with data for 2015, putting it in the middle of the range.
The long-run direction has been consistently rising across the 26 years of available data.
Averages by decade
| Decade | Average | Lowest | Highest | Years |
|---|---|---|---|---|
| 1990s | 3,753 | 2,656 | 4,489 | 10 |
| 2000s | 5,554 | 3,816 | 7,176 | 10 |
| 2010s | 5,094 | 4,627 | 7,312 | 6 |
Countries ranked near Latvia
More reference data data for Latvia
- Emission Totals - Indirect emissions (N2O) - Manure applied to Soils 0.128 (2050)
- Emission Totals - Indirect emissions (N2O) - Manure left on Pasture 0.0503 (2050)
- Emission Totals - Indirect emissions (N2O) - IPCC Agriculture 0.4657 (2050)
- Emission Totals - Indirect emissions (N2O) - Crop Residues 0.0673 (2050)
- Emission Totals - Indirect emissions (N2O) - Agricultural Soils 0.4657 (2050)
- Emission Totals - Emissions (N2O) - Manure applied to Soils 0.4291 (2050)
- Emission Totals - Emissions (N2O) - Manure Management 0.2986 (2050)
- Emission Totals - Emissions (N2O) - Manure left on Pasture 0.2679 (2050)
- Emission Totals - Emissions (N2O) - IPCC Agriculture 2.27 (2050)
- Emission Totals - Emissions (N2O) - Crop Residues 0.3666 (2050)
Frequently asked questions
- What is ghg emissions from food systems, by gas (mt co2 eq) - co2 in Latvia?
- Ghg emissions from food systems, by gas (mt co2 eq) - co2 in Latvia was 4,627 in 2015, according to Crippa, M., Solazzo, E., Guizzardi, D., Monforti-Ferrario, F., Tubiello, F.N. and Leip, A. EDGAR-FOOD data. Figshare, doi:10.6084/m9.figshare.13476666 (2021).
- What is the highest ghg emissions from food systems, by gas (mt co2 eq) - co2 recorded in Latvia?
- The highest recorded value was 7,312 in 2010.
- What is the lowest ghg emissions from food systems, by gas (mt co2 eq) - co2 recorded in Latvia?
- The lowest recorded value was 2,656 in 1991.
- How does Latvia rank for ghg emissions from food systems, by gas (mt co2 eq) - co2?
- Latvia ranks 109th out of 203 countries with data for 2015.
- Is ghg emissions from food systems, by gas (mt co2 eq) - co2 rising or falling in Latvia?
- Over the last ten years it is up 0.5%. The long-run trend across the full record is rising.
- Where does this Latvia data come from?
- The figures come from Crippa, M., Solazzo, E., Guizzardi, D., Monforti-Ferrario, F., Tubiello, F.N. and Leip, A. EDGAR-FOOD data. Figshare, doi:10.6084/m9.figshare.13476666 (2021), published as part of GHG emissions from food systems, by gas (Mt CO2 eq) - CO2. Statizoid updates them automatically from the source API.
Download this data
CSV · JSON — 26 observations, free to reuse under CC BY 4.0 (World Bank Open Data).
About this data
GHG emissions from food systems disaggregated by gas are generated from EDGAR-FOOD, a global emission inventory of GHGs from the food systems. EDGAR-FOOD has been developed to aid the understanding of the activities underlying the energy demand and use, agriculture and land use change emissions associated with the production, distribution, consumption and disposal of food through the various stages and sectors of the composite global food system. These data were complemented with data from the FAOSTAT database on GHG emissions from land use related to agriculture (FAO, 2020). EDGAR-FOOD represents the first database consistently covering each stage of the food chain for all countries with yearly frequency for the period 1990-2015. Details regarding the methodology applied are available in Crippa et al. (2021).