Manure applied to Soils — Indirect emissions, annual growth rate in Saint Lucia

Saint Lucia: Manure applied to Soils — Indirect emissions, annual growth rate was 5.26 % change on previous year in 2023. ◆ Volatile

Latest (2023)
5.26 % change on previous year
Change on year
down 5.3%
World rank
26th
of 195 countries
All-time high
21.74 % change on previous year
in 2007
All-time low
-18.18 % change on previous year
in 2021
Years of data
62
1962–2023

Manure applied to Soils — Indirect emissions, annual growth rate in Saint Lucia, 1962–2023

-20-1001020196219922023

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

Analysis

Saint Lucia recorded 5.26 % change on previous year for manure applied to soils — indirect emissions, annual growth rate in 2023.

Compared with earlier readings it is down 5.3% on the previous year and up 136.8% over ten years.

Over the whole period, manure applied to soils — indirect emissions, annual growth rate in Saint Lucia peaked at 21.74 % change on previous year in 2007 and was at its lowest, -18.18 % change on previous year, in 2021.

Saint Lucia ranks 26th of 195 countries on this measure, in the top quarter.

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

Manure applied to Soils — Indirect emissions, annual growth rate in Saint Lucia, year by year

Annual values for Manure applied to Soils — Indirect emissions (N2O), annual growth rate in Saint Lucia, 1962 to 2023.
Year % change on previous year Change
1962 0 % change on previous year
1963 5.88 % change on previous year
1964 -5.56 % change on previous year -194.4%
1965 5.88 % change on previous year -205.9%
1966 0 % change on previous year -100.0%
1967 11.11 % change on previous year
1968 -5 % change on previous year -145.0%
1969 -10.53 % change on previous year +110.5%
1970 -17.65 % change on previous year +67.6%
1971 -7.14 % change on previous year -59.5%
1972 -7.69 % change on previous year +7.7%
1973 -8.33 % change on previous year +8.3%
1974 0 % change on previous year -100.0%
1975 0 % change on previous year
1976 9.09 % change on previous year
1977 0 % change on previous year -100.0%
1978 8.33 % change on previous year
1979 0 % change on previous year -100.0%
1980 7.69 % change on previous year
1981 0 % change on previous year -100.0%
1982 7.14 % change on previous year
1983 6.67 % change on previous year -6.7%
1984 6.25 % change on previous year -6.3%
1985 0 % change on previous year -100.0%
1986 0 % change on previous year
1987 0 % change on previous year
1988 0 % change on previous year
1989 0 % change on previous year
1990 0 % change on previous year
1991 0 % change on previous year
1992 5.88 % change on previous year
1993 0 % change on previous year -100.0%
1994 5.56 % change on previous year
1995 0 % change on previous year -100.0%
1996 5.26 % change on previous year
1997 0 % change on previous year -100.0%
1998 -5 % change on previous year
1999 0 % change on previous year -100.0%
2000 0 % change on previous year
2001 0 % change on previous year
2002 5.26 % change on previous year
2003 5 % change on previous year -5.0%
2004 4.76 % change on previous year -4.8%
2005 4.55 % change on previous year -4.5%
2006 0 % change on previous year -100.0%
2007 21.74 % change on previous year
2008 -14.29 % change on previous year -165.7%
2009 -4.17 % change on previous year -70.8%
2010 -4.35 % change on previous year +4.3%
2011 0 % change on previous year -100.0%
2012 -4.55 % change on previous year
2013 -14.29 % change on previous year +214.3%
2014 5.56 % change on previous year -138.9%
2015 15.79 % change on previous year +184.2%
2016 4.55 % change on previous year -71.2%
2017 4.35 % change on previous year -4.3%
2018 0 % change on previous year -100.0%
2019 -4.17 % change on previous year
2020 -4.35 % change on previous year +4.3%
2021 -18.18 % change on previous year +318.2%
2022 5.56 % change on previous year -130.6%
2023 5.26 % change on previous year -5.3%

Averages by decade

DecadeAverage LowestHighest Years
1960s 0.2242 % change on previous year -10.53 % change on previous year 11.11 % change on previous year 8
1970s -2.34 % change on previous year -17.65 % change on previous year 9.09 % change on previous year 10
1980s 2.78 % change on previous year 0 % change on previous year 7.69 % change on previous year 10
1990s 1.17 % change on previous year -5 % change on previous year 5.88 % change on previous year 10
2000s 2.29 % change on previous year -14.29 % change on previous year 21.74 % change on previous year 10
2010s 0.2893 % change on previous year -14.29 % change on previous year 15.79 % change on previous year 10
2020s -2.93 % change on previous year -18.18 % change on previous year 5.56 % change on previous year 4

Countries ranked near Saint Lucia

  1. 23 Ethiopia 6.11 % change on previous year compare
  2. 24 Angola 6.05 % change on previous year compare
  3. 25 Malta 5.56 % change on previous year compare
  4. 27 Pakistan 5.01 % change on previous year compare
  5. 28 Sao Tome and Principe 4.76 % change on previous year compare
  6. 29 Indonesia 4.65 % change on previous year compare

See the full ranking of 247 places →

More climate change data for Saint Lucia

All data for Saint Lucia →

Frequently asked questions

What is manure applied to soils — indirect emissions, annual growth rate in Saint Lucia?
Manure applied to soils — indirect emissions, annual growth rate in Saint Lucia was 5.26 % change on previous year in 2023, according to Statizoid (derived).
What is the highest manure applied to soils — indirect emissions, annual growth rate recorded in Saint Lucia?
The highest recorded value was 21.74 % change on previous year in 2007.
What is the lowest manure applied to soils — indirect emissions, annual growth rate recorded in Saint Lucia?
The lowest recorded value was -18.18 % change on previous year in 2021.
How does Saint Lucia rank for manure applied to soils — indirect emissions, annual growth rate?
Saint Lucia ranks 26th out of 195 countries with data for 2023.
Is manure applied to soils — indirect emissions, annual growth rate rising or falling in Saint Lucia?
Over the last ten years it is up 136.8%. The long-run trend across the full record is volatile.
Where does this Saint Lucia data come from?
The figures come from Statizoid (derived), published as part of Manure applied to Soils — 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.

Share, cite or embed this page

Cite this page

Manure applied to Soils — Indirect emissions, annual growth rate in Saint Lucia. Statizoid, drawing on Statizoid (derived). Retrieved 23 August 2026, from https://climate.statizoid.com/stat/manure-applied-to-soils-indirect-emissions-annual-growth-rate/st-lucia/

Embed or link this data

Paste this into a page to link back to these figures. The data itself is free to reuse under Derived by Statizoid from the sources named on the page; please keep the attribution.

<a href="https://climate.statizoid.com/stat/manure-applied-to-soils-indirect-emissions-annual-growth-rate/st-lucia/">Manure applied to Soils — Indirect emissions, annual growth rate in Saint Lucia</a> — Statizoid

How this figure is calculated

The year-on-year percentage change in Manure applied to Soils — Indirect emissions (N2O). 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
Manure applied to Soils — Indirect emissions (N2O), annual growth rate
Unit
% change on previous year
Source
Statizoid (derived)
Licence
Derived by Statizoid from the sources named on the page
Coverage
247 places, 13,935 data points, 1962–2023
Last refreshed

The year-on-year percentage change in Manure applied to Soils — Indirect emissions (N2O). Computed from consecutive annual observations; years either side of a gap are skipped rather than bridged.