Created
June 18, 2021 22:00
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library (dplyr) | |
data = read.csv('median-error.csv') | |
png("max-error-uniform.png", width=1200, height=1000, pointsize=25) | |
i = -3.8 | |
boxplot(abs(error) ~ delta, (data %>% filter(n0==20)), ylim=c(0, 0.05), xlim=c(0.6,4.4), boxwex=0.1, at=(1:4)+i/11, xaxt='n', xlab=expression(delta), cex.lab=1.4) | |
axis(side=1, at=1:4, labels=c(50,100,200,500)) | |
for (nx in c(20, 50, 100, 1000, 10000, 100000)) { | |
boxplot(abs(error) ~ delta, (data %>% filter(n0==nx)), ylim=c(0, 0.05), add=T, boxwex=0.1, at=(1:4)+i/11, xaxt='n', yaxt='n') | |
i = i+1.5 | |
} | |
text(0.9 + c(0,0,.2), 0.05 - (1:3)*0.003, c("Absolute error of quantile(x) for uniform distribution", "with [20, 50, 100, 1000, 10000, 100000] samples", "and x in [0.0001, 0.001, 0.01, 0.1, 0.5]"), adj=c(0,0,-0.5), cex=1.3) | |
dev.off() |
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