Created
October 23, 2015 18:42
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### Earnings Dumbbell Chart | |
library(ggplot2) | |
library(tidyr) | |
library(dplyr) | |
library(scales) | |
schoolearnings <- read.csv("schoolearnings.csv", stringsAsFactors=FALSE) | |
df <- schoolearnings %>% gather(gender,value,2:3) | |
men <- df %>% filter(gender=="Men") %>% arrange(desc(value)) %>% .$School | |
df$School <- factor(df$School, levels=rev(men)) | |
schoolearnings$School <- factor(schoolearnings$School, levels=rev(men)) | |
## Nice dotchart | |
ggplot() + | |
geom_segment(data=schoolearnings, aes(x=Women, xend=Men, y=School, yend=School), color="gray77",lwd=1)+ | |
geom_point(data=df, aes(value, School, group=gender,color=gender), size=5) + | |
scale_color_manual(values=c("thistle4", "tomato4"))+ | |
scale_x_continuous(breaks = seq(60,160,20), labels=c("$60k", "$80k","$100k","$120k","$140k","$160k")) + | |
ggtitle("Gender earnings disparity - 10 years after enrollment") + | |
xlab("") + ylab("") + | |
theme( | |
plot.title = element_text(hjust=0,vjust=1, size=rel(2.3)), | |
panel.background = element_blank(), | |
panel.grid.major.y = element_blank(), | |
panel.grid.major.x = element_line(color="gray70",linetype = c("28")), | |
panel.grid.minor.x = element_blank(), | |
panel.grid.minor.y = element_blank(), | |
plot.background = element_blank(), | |
text = element_text(color="gray20", size=10), | |
axis.text = element_text(size=rel(1.0)), | |
axis.text.x = element_text(color="gray20",size=rel(1.8)), | |
axis.text.y = element_text(color="gray20", size=rel(1.6)), | |
axis.title.x = element_text(size=rel(1.5), vjust=0), | |
axis.title.y = element_text(size=rel(1.5), vjust=1), | |
axis.ticks.y = element_blank(), | |
axis.ticks.x = element_blank(), | |
legend.position = "none" | |
) |
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School | Women | Men | gap | |
---|---|---|---|---|
MIT | 94 | 152 | 58 | |
Stanford | 96 | 151 | 55 | |
Harvard | 112 | 165 | 53 | |
U.Penn | 92 | 141 | 49 | |
Princeton | 90 | 137 | 47 | |
Chicago | 78 | 118 | 40 | |
Georgetown | 94 | 131 | 37 | |
Tufts | 76 | 112 | 36 | |
Yale | 79 | 114 | 35 | |
Columbia | 86 | 119 | 33 | |
Duke | 93 | 124 | 31 | |
Dartmouth | 84 | 114 | 30 | |
NYU | 67 | 94 | 27 | |
Notre Dame | 73 | 100 | 27 | |
Cornell | 80 | 107 | 27 | |
Michigan | 62 | 84 | 22 | |
Brown | 72 | 92 | 20 | |
Berkeley | 71 | 88 | 17 | |
Emory | 68 | 82 | 14 | |
UCLA | 64 | 78 | 14 | |
SoCal | 72 | 81 | 9 |
Author
jalapic
commented
Oct 23, 2015
The data may be +/- a thousand $ per data point as I estimated them from a different figure !
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