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What I have is a Kaplan-Meier Analysis of patients with mechanical heart support using R.

What I need is adding the following data into the plot (like in the example):

  • patients who survived due to a heart transplantation (HTX)
  • patients who died

In other words, there are two groups where one is a subset (transplanted patients) of the other (all patients). These two curves must start at 0/0 and will increase.

My own plot is done by:

pump <- read.table(file=datafile, header=FALSE,
                   col.names=c('TIME', 'CENSUS', 'DEVICE'))
# convert days to months
pump$TIME <- pump$TIME/(730/24)
mfit.overall <- survfit(Surv(TIME, CENSUS==0) ~ 1, data=pump)
plot(mfit.overall, xlab="months on device", ylab="cum. survival", xaxt="n")
axis(1, at=seq(from=0, to=24, by=6), las=0)

How may I add the two additional curves?

Kind Regards Johann

Sample Kaplan Meier Curve: http://i.stack.imgur.com/158e8.jpg

Demo Data:

Survival Data, which goes into pump:

TIME    CENSUS  DEVICE
426     1       1
349     1       1
558     1       1
402     1       1
12      0       1
84      0       1
308     1       1
174     1       1
315     1       1
734     1       1
544     1       2
1433    1       2
1422    1       2
262     1       2
318     1       2
288     1       2
1000    1       2

TX data:

TIME    CENSUS  DEVICE
426     1        1
288     1        2
308     1        1

deaths:

TIME    CENSUS  DEVICE
12      0        1
84      0        1
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1  
Can you provide the data you use for the plot or dummy data on the same form, in case you cannot share the actual data? –  Backlin Nov 13 '12 at 10:49
    
To be honest, even though par(new=TRUE) is a useful hack, I think @Gavin has the better answer. If I had known about it I would also have solved it his way. –  Backlin Nov 14 '12 at 8:50

2 Answers 2

up vote 7 down vote accepted

With par(new=TRUE) you can draw a second plot in the same figure as the first.

Normally I would recommend using lines() for adding curves to a plot, since par(new=TRUE) performs the filosophically different task of overlaying plots. When using functions in a way they are not intended to be used you risk commiting misstakes, e.g. I nearly forgot the vital xlim argument. However, it is not trivial to extract the curves from the survfit objects, so I figured it was the lesser of two evils.

# Fake data for the plots
pump <- data.frame(TIME=rweibull(40, 2, 20),
                   CENSUS=runif(40) < .3,
                   DEVICE=rep(0:1, c(20,20)))
# load package
library("survival")

# Fit models
mfit.overall <-survfit(Surv(TIME, CENSUS==0) ~ 1, data=pump)
mfit.htx <- survfit(Surv(TIME, CENSUS==0) ~ 1, data=pump, subset=DEVICE==1)

# Plot
plot(mfit.overall, col=1, xlim=range(pump$TIME), fun=function(x) 1-x)
# `xlim` makes sure the x-axis is the same in both plots
# `fun` flips the curve to start at 0 and increase
par(new=TRUE)
plot(mfit.htx, col=2, xlim=range(pump$TIME), fun=function(x) 1-x,
    ann=FALSE, axes=FALSE, bty="n") # This hides the annotations of the 2nd plot
legend("topright", c("All", "HTX"), col=1:2, lwd=1)

enter image description here

share|improve this answer
    
Backlin, Thanks! Yeah, I know that... The point is how to insert the data from 0,0 (lower left corner), which will increase to the upper right corner... –  Johann Horvat Nov 13 '12 at 12:32
    
Backlin, please find attached demo data... –  Johann Horvat Nov 13 '12 at 12:38
    
Forgot about that, but has corrected it now. –  Backlin Nov 13 '12 at 12:41
    
Backlin, Perfect! This works! The trick is: fun=function(x) 1-x –  Johann Horvat Nov 13 '12 at 13:00
1  
There is a lines() method so no need to hack the curves out of the survfit object. –  Gavin Simpson Nov 13 '12 at 13:13

No need for plot.new() (though this is a nice illustartion of that paradigm). This can all be achieved via the lines() method for class "surfit".

plot(mfit.overall, col=1, xlim=range(pump$TIME), fun=function(x) 1-x)
lines(mfit.htx, col=2, fun=function(x) 1-x)
lines(mfit.htx, col=2, fun=function(x) 1-x, lty = "dashed", conf.int = "only")
legend("topleft", c("All", "HTX"), col=1:2, lwd=1, bty = "n")

This gives, using @Backlin's example data (but different seeds, hence different data)

enter image description here

The reason for the two calls to lines() is to arrange for the confidence interval to be drawn with a dashed line and I couldn't see a way to pass multiple lty's to lines() (that worked!) in the single lines() call.

share|improve this answer
1  
Thanks a lot! I didn't know there was a lines.survfit function, but this is a better solution than par(new=TRUE). –  Backlin Nov 13 '12 at 14:04

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