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SO Winkel Choro example
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library(maptools) | |
library(mapproj) | |
library(rgeos) | |
library(rgdal) | |
library(ggplot2) | |
library(jsonlite) | |
library(RCurl) | |
# for theme_map | |
devtools::source_gist("33baa3a79c5cfef0f6df") | |
# naturalearth world map geojson | |
world <- readOGR(dsn="https://raw.githubusercontent.com/nvkelso/natural-earth-vector/master/geojson/ne_50m_admin_0_countries.geojson", layer="OGRGeoJSON") | |
# remove antarctica | |
world <- world[!world$iso_a3 %in% c("ATA"),] | |
world <- spTransform(world, CRS("+proj=wintri")) | |
dat_url <- getURL("https://gist.githubusercontent.com/hrbrmstr/7a0ddc5c0bb986314af3/raw/6a07913aded24c611a468d951af3ab3488c5b702/pop.csv") | |
pop <- read.csv(text=dat_url, stringsAsFactors=FALSE, header=TRUE) | |
map <- fortify(world, region="iso_a3") | |
labs <- data.frame(lat=c(39.5, 35.50), | |
lon=c(-98.35, 103.27), | |
title=c("US", "China")) | |
coordinates(labs) <- ~lon+lat | |
c_labs <- as.data.frame(SpatialPointsDataFrame(spTransform( | |
SpatialPoints(labs, CRS("+proj=longlat")), CRS("+proj=wintri")), | |
labs@data)) | |
gg <- ggplot() | |
gg <- gg + geom_map(data=map, map=map, | |
aes(x=long, y=lat, map_id=id, group=group), | |
fill="#ffffff", color=NA) | |
gg <- gg + geom_map(data=pop, map=map, color="white", size=0.15, | |
aes(fill=log(X2013), group=Country.Code, map_id=Country.Code)) | |
gg <- gg + geom_text(data=c_labs, aes(x=lon, y=lat, label=title)) | |
gg <- gg + scale_fill_gradient(low="#f7fcb9", high="#31a354", name="Population by Country\n(2013, log scale)") | |
gg <- gg + labs(title="2013 Population") | |
# much better projection for US maps | |
gg <- gg + coord_equal(ratio=1) | |
gg <- gg + theme_map() | |
gg <- gg + theme(legend.position="bottom") | |
gg <- gg + theme(legend.key = element_blank()) | |
gg <- gg + theme(plot.title=element_text(size=16)) | |
gg |
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