Micronesia vs Western Africa: Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$

Micronesia
184.73 million USD
in 2023
Western Africa
226,158 million USD
in 2023
Micronesia rank
16th
Western Africa rank
18th

Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$ over time

  • Micronesia
  • Western Africa
050.0k100.0k150.0k200.0k250.0k199520092023

How they compare

Western Africa currently reports 226,158 million USD against 184.73 million USD in Micronesia, a difference of 225,973 million USD.

That makes Western Africa's figure about 1,224.3 times Micronesia's.

Across all 29 years both countries report, Western Africa has been ahead every year.

Micronesia ranks 16th and Western Africa ranks 18th of 17 countries.

Western Africa has averaged higher in every one of the 4 decades both report.

Head to head by decade

Decade Micronesia Western Africa Difference Ahead
1990s 104.98 million USD 74,995 million USD 74,890 million USD Western Africa
2000s 125.37 million USD 108,590 million USD 108,465 million USD Western Africa
2010s 159.95 million USD 187,732 million USD 187,572 million USD Western Africa
2020s 182.54 million USD 224,695 million USD 224,513 million USD Western Africa

Averages of every year both report within each decade.

Frequently asked questions

Which has higher net capital stocks (agriculture, forestry and fishing) — value us$, Micronesia or Western Africa?
Western Africa, at 226,158 million USD against 184.73 million USD in Micronesia as of 2023.
What is the difference in net capital stocks (agriculture, forestry and fishing) — value us$ between Micronesia and Western Africa?
225,973 million USD, with Western Africa ahead.
How many years of comparable data are there for Micronesia and Western Africa?
29 years are reported by both, from 1995 to 2023.
How do Micronesia and Western Africa rank globally for net capital stocks (agriculture, forestry and fishing) — value us$?
Micronesia ranks 16th and Western Africa ranks 18th of 17 countries.
Where does this data come from?
Food and Agriculture Organization of the United Nations, published as Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$, 2015 prices. Statizoid refreshes it automatically from the source and publishes the full history for both places.

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Micronesia vs Western Africa: Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$. Statizoid, drawing on Food and Agriculture Organization of the United Nations. Retrieved 13 September 2026, from https://environment.statizoid.com/compare/net-capital-stocks-agriculture-forestry-and-fishing-value-us-2015-prices/micronesia/western-africa/

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<a href="https://environment.statizoid.com/compare/net-capital-stocks-agriculture-forestry-and-fishing-value-us-2015-prices/micronesia/western-africa/">Micronesia vs Western Africa: Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$</a> — Statizoid

About this data

Indicator
Net Capital Stocks (Agriculture, Forestry and Fishing) — Value US$, 2015 prices
Unit
million USD
Source
Food and Agriculture Organization of the United Nations
Licence
CC BY-NC-SA 3.0 IGO (FAO)
Coverage
226 places, 6,479 data points, 1995–2023
Last refreshed

As part of the FAO Agriculture Capital Stock (ACS) database, the Statistics Division of FAO publishes country-by-country data on physical investment in agriculture, forestry and fishing as measured by the System of National Accounts (SNA) concept of Gross Fixed Capital Formation (GFCF). Additional variables included in the ACS are Net and Gross Capital Stock, Consumption of Fixed Capital, the Agriculture Investment ratio, and the Gross Fixed Capital Formation Agriculture Orientation Index. The FAO Agriculture Capital Stock Database is an analytical database: whenever available, the database integrates official National Accounts data harvested from the UNSD National Accounts Main Aggregates Database (UNSD AMA) and the OECD Annual National Accounts Database (OECD ANA). The database is further supplemented by OECD Structural Analysis database (OECD STAN) and, in a few cases, data from country’s statistics websites. If the full set of official data is not available for any specific country, imputation methods are applied to obtain estimates over the complete time series. Many data points in ACS are estimated and are flagged as such; they do not represent official submissions by Member Countries. With a view of producing internationally comparable net capital stock estimates, the Perpetual Inventory Method (PIM) with a constant geometric depreciation rate is employed to impute missing data. The Perpetual Inventory Method is a well-established economic model to calculate Net Capital Stocks (NCS) and Consumption of Fixed Capital (CFC) from time series of Gross Fixed Capital Formation (GFCF). Specifically, annual measures of the NCS are obtained from cumulating historical series on physical investment flows and deducting the part of assets that are depreciated (the Consumption of Fixed Capital that occurs in every period). In order to implement the PIM, long time series on aggregate GFCF in agriculture, forestry and fishing is required.An attempt is made to rely as much as possible on National Accounts data published by the OECD and UNSD. When country data are partially or fully missing, econometric techniques to impute missing observations are employed. Depending on the pattern of data missingness for the countries, different imputation methods are applied (from among the ARIMAX, PANEL regression, and OLS approaches) for the data series from 1995 to 2022. The values of Agriculture Capital Stock related indicators for 2023, including Agriculture Investment Ratio, Agriculture Orientation Index, Net Capital Stock, Gross Fixed Capital Formation and Consumption of Fixed Capital, are estimated using the Holt-Winters (HW) method (Cipra et al., 1995). The HW method is an exponential smoothing method for forecasting the annual values of economic variables. In this context, the HW method relies on existing (historical) values of the Agriculture Capital Stock. The predicted value is an extrapolation of the historical values to the specified target date, which extends the timeline without considering seasonality in the annual series.All data series in the database are provided both in national currencies and in US dollars as well as in current prices and constant prices with base year 2015.