Somalia Population Map Metadata Report

Prediction Weighting Layer Used in Population Redistribution

The data presented below represent the predicted number of people per ~100 m pixel as estimated using the random forest (RF) model as described in Stevens, et al. (2015). The following pages contain a description of the RF model and its covariates, their sources and any metadata collected for each covariate. The prediction weighting layer is used to dasymetrically redistribute the census counts and project counts to match estimated populations based on UN estimates for the final population maps provided by WorldPop.

Stevens, F. R., Gaughan, A. E., Linard, C., & Tatem, A. J. (2015). Disaggregating Census Data for Population Mapping Using Random Forests with Remotely-Sensed and Ancillary Data. PLOS ONE, 10(2), e0107042. doi:10.1371/journal.pone.0107042

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Somalia Census Data and Observed Population Density

These data are the population density values used to estimate the RF model used to create the prediction weighting layer you see above. Values represent population density as measured by people per hectare and calculated from population counts within each census unit. These values are used as the dependent variable during model estimation.

Somalia population estimation survey 2014 at the level of health districts

Folder: Census
File Name: SOM_HD_2014.shp
Source: Federal republic of Somalia, UNFPA, UNDP, UNICEF
Description: Required fields for map production are ADMINID and ADMINPOP.
Class: polygon
Derived Covariates:
area, buff, zones,

class       : SpatialPolygonsDataFrame 
features    : 109 
extent      : 53268, 1203257, -184040, 1331562  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 24

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Random Forest Model and Diagnostics

These output and figures outline the estimated RF model that is used to predict the population density weighting layer. The model is fitted to the population density values for the preceding census data using covariates aggregatedfrom the ancillary data sources summarized following the model diagnostics.


Call:
 randomForest(x = x_data, y = y_data, ntree = popfit$ntree, mtry = popfit$mtry,      nodesize = length(y_data)/1000, importance = TRUE, proximity = TRUE) 
               Type of random forest: regression
                     Number of trees: 500
No. of variables tried at each split: 8

          Mean of squared residuals: 0.44
                    % Var explained: 93

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Covariate Metadata

Somalia Classified Land Cover

Folder: Landcover
File Name: refined_lc.tif
Source: GlobCover, 300m
Description: Landcover from the GlobCover product resampled to 100m, refined with detailed Landsat-derived settlement extents (Tatem et al. 2004,2005), reclassified to match AfriPop coding and eventually broken down into binary classifications by aggregated land cover type (see Linard, et al., 2010 and Gaughan, et al. 2013 for category information).
Class: raster
Derived Covariates:
cls011, dst011, cls040, dst040, cls130, dst130, cls140, dst140, cls150, dst150, cls160, dst160, cls190, dst190, cls200, dst200, cls210, dst210, cls230, dst230, cls240, dst240, cls250, dst250, clsBLT, dstBLT,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Landcover\Derived\landcover.tif 
names       : landcover 
min values  :        11 
max values  :       250 

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Suomi NPP VIIRS-Derived 2012 Lights at Night, 15 arc-second

Folder: Lights
File Name: DEFAULT: VIIRS 2012
Source: http://ngdc.noaa.gov/eog/viirs/download_viirs_ntl.html
Description: These 'Lights at Night' data were derived from imagery collected by the Suomi National Polar-orbiting Partnership (NPP) Visible Infrared Imaging Radiometer Suite (VIIRS) sensor. Data were collected in 2012 on moonless nights and though background noise associated with fires, gas-flares, volcanoes or aurora have not been removed it represents the best-available data for night-time light production.
Class: raster
Derived Covariates:
,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Lights\Derived\lights.tif 
names       : lights 
min values  :  -0.48 
max values  :     65 

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WorldClim/BioClim Mean Annual Temperature 1950-2000, 30 arc-second

Folder: Temp
File Name: DEFAULT: BIO1
Source: http://www.worldclim.org/current
Description: WorldClim/BioClim 1950-2000 mean annual precipitation (BIO12) and mean annual temperature (BIO1) estimates (Hijmans et al., 2005) were downloaded, mosaicked and subset to match the extent of our land cover data for the mapping of this region.
Class: raster
Derived Covariates:
,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Temp\Derived\temp.tif 
names       : temp 
min values  :   96 
max values  :  320 

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WorldClim/BioClim Mean Annual Precipitation 1950-2000, 30 arc-second

Folder: Precip
File Name: DEFAULT: BIO12
Source: http://www.worldclim.org/current
Description: WorldClim/BioClim 1950-2000 mean annual precipitation (BIO12) and mean annual temperature (BIO1) estimates (Hijmans et al., 2005) were downloaded, mosaicked and subset to match the extent of our land cover data for the mapping of this region.
Class: raster
Derived Covariates:
,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Precip\Derived\precip.tif 
names       : precip 
min values  :      9 
max values  :   1944 

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Inland Waterbodies

Folder: Waterbodies
File Name: DEFAULT: hydro/watrcrsl
Source: National Geospatial-Intelligence Agency (NGA), http://geoengine.nga.mil/geospatial/SW_TOOLS/NIMAMUSE/webinter/rast_roam.html
Description: The VMAP0 data area downloaded as separate files, grouped roughly by continent, and merged into individual shapefiles for subsetting and further processing for population mapping efforts. These data were obtained directly from the original VMAP0 data sources provided by the NGA and pre-processed using Military Analyst in ArcGIS 10.0.
Class: polygon
Derived Covariates:
cls, dst,

class       : SpatialPolygonsDataFrame 
features    : 195 
extent      : 44471, 1001540, -163507, 1263060  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 10

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Protected Areas

Folder: Protected
File Name: DEFAULT: WDPAfgdb_Sept2012.gdb
Source: World Database on Protected Areas, Downloaded September, 2012, UNEP, http://www.wdpa.org, http://protectedplanet.net
Description: These data are compiled by UNEP and distributed via the Protected Planet website. All protected areas were downloaded regardless of International Union for Conservation of Nature (IUCN) or any other designation, so they include sanctuaries, national parks, game reserves, World Heritage Sites, etc.
Class: polygon
Derived Covariates:
cls, dst,

class       : SpatialPolygonsDataFrame 
features    : 3 
extent      : 85895, 148388, -193344, -127397  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 27

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Elevation and Derived Slope, 3 second

Folder: Elevation
File Name: DEFAULT: Void-Filled DEM.gdb
Source: HydroSHEDS Void-Filled DEM (Lehnert, et al., 2006), http://hydrosheds.cr.usgs.gov/dataavail.php
Description: The HydroSHEDS data are the result of an effort to provide a globally consistent dataset consisting of NASA's Shuttle Radar Topography Mission (SRTM) data and have been processed, void-filled and corrected for use at large scales.
Class: raster
Derived Covariates:
, slope,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Elevation\Derived\elevation.tif 
names       : elevation 
min values  :      -164 
max values  :      3383 

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Settlement candidate layer

Folder: Guf
File Name: somalia-settcandidateareas1.tif
Source: Global Urban Footprint (GUF), German Aerospace Center (DLR)
Description: The raster dataset was generated using OSM roads and points as well as the raw GUF. If an area has a positive count in all three layers, then it shows a value of 3, if two positive counts =2, etc.
Class: raster
Derived Covariates:
,

class       : RasterBrick 
dimensions  : 15179, 11600, 176076400, 1  (nrow, ncol, ncell, nlayers)
resolution  : 100, 100  (x, y)
extent      : 53324, 1213324, -184734, 1333166  (xmin, xmax, ymin, ymax)
coord. ref. : +proj=utm +zone=38 +datum=WGS84 +units=m +no_defs +ellps=WGS84 +towgs84=0,0,0 
data source : D:\APRF\RF\data\SOM\Guf\Derived\guf.tif 
names       : guf 
min values  :   0 
max values  :   3 

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Delineated Residential Land Use (OSM), 2016

Folder: Residential
File Name: LU_residential.shp
Source: Open Street Map, Downloaded 2016-08-02, http://extract.bbbike.org/
Description: These data were downloaded as part of a per-country package of data layers made availalble as shapefiles through the http://extract.bbbike.org website, extracted from the Open Street Map (OSM) database.
Class: polygon
Derived Covariates:
cls, dst,

class       : SpatialPolygonsDataFrame 
features    : 1336 
extent      : 51756, 1188446, -181677, 1329734  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 3

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Settlement point locations

Folder: Settlements
File Name: Settlements_UNOCHA.shp
Source: National Geospatial-Intelligence Agency (NGA, http://geoengine.nga.mil/geospatial/SW_TOOLS/NIMAMUSE/webinter/rast_roam_help.html) and Open Street Map (OSM), Downloaded June 2016, http://extract.bbbike.org/
Description: Distribution of settlements in Somalia combining populated places database assembled by NGA and Place locations database assembled from OSM. Although no specific date on when the last update was made, both datasets are reported to be updated on a weekly basis on their respective website. 20,085 settlement locations have been geo-coded.
Class: point
Derived Covariates:
cls, dst,

class       : SpatialPointsDataFrame 
features    : 20085 
extent      : 54141, 1188891, -181317, 1328731  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 7

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Urban Extents

Folder: Urban
File Name: Somalia_Urban_Extents_090616.shp
Source: INFORM Project, KEMRI-Wellcome Trust Programme, Nairobi
Description: Urban centres in Somalia have been assembled in June 2016 using the place name gazetteer of Somalia (www.geonames.nga.mil/gns/) and subsequently digitizing using Google Earth the 46 urban places with an estimated 10,000 inhabitants or more
Class: polygon
Derived Covariates:
cls, dst,

class       : SpatialPolygonsDataFrame 
features    : 46 
extent      : 173545, 1186746, -41217, 1319621  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 4

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Waterways (OSM), 2016

Folder: Wtrways
File Name: Waterways.shp
Source: Open Street Map, Downloaded 2016-08-02, http://extract.bbbike.org/
Description: These data were downloaded as part of a per-country package of data layers made availalble as shapefiles through the http://extract.bbbike.org website, extracted from the Open Street Map (OSM) database.
Class: linear
Derived Covariates:
cls, dst,

class       : SpatialLinesDataFrame 
features    : 628 
extent      : 43369, 1190422, -150665, 1328829  (xmin, xmax, ymin, ymax)
coord. ref. : NA 
variables   : 4

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