Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Suppose I have a data that looks like this.

> print(dat)
V1    V2
1  1 11613
2  2  6517
3  3  2442
4  4   687
5  5   159
6  6    29

# note that V2 is the frequency and V1 does not always start with 1. 


> plot(dat,main=title,type="h")
   # legend()??

Now what I want to do is to plot histogram, and have the mean and standard deviation included as the legend. In the above example the standard deviation equals 0.87 and the mean eauals 1.66.

How can I achieve that automatically in R?

share|improve this question

2 Answers 2

up vote 3 down vote accepted

enter image description hereThis solves the problem with legend creation that Gavin notices.

require(Hmisc) 
myMean <- wtd.mean(dat$V1, dat$V2)
mySD <- sqrt(wtd.var(dat$V1, dat$V2))
plot(dat,main="title",type="h")

L= list( bquote(Mean== .(myMean)), bquote(SD== .(mySD) ) ) 
legend('topright', legend=sapply(L, as.expression))

This was pulled from an answer on Rhelp that I posted in 2010 that attributed the strategy for the solution to a 2005 exchange between Gabor Grothendieck and Thomas Lumley.

share|improve this answer
    
Thanks for the pointer to sapply(foo, as.expression). I think I've used that someone on SO before too now I come to think of it. –  Gavin Simpson May 1 '12 at 17:01

This gets pretty close:

dat <- data.frame(V1 = 1:6, V2 = c(11613, 6517, 2442, 687, 159, 29))

addMyLegend <- function(data, where = "topright", digits = 3, ...) {
    MEAN <- round(mean(data), digits = digits)
    SD <- round(sd(data), digits = digits)
    legend(where, legend = list(bquote(Mean == .(MEAN)), 
                                bquote(SD == .(SD))),
           ...)
}

plot(dat, type = "h")
addMyLegend(dat$V1, digits = 2, bty = "n")

Which gives

custom legend

I'm not sure why the plotmath code is not displaying the == and a typeset =... Will have to look into that.

To see what is going on read ?bquote which explains that it can be used to replace components of an expression with dynamic data. Anything wrapped in .( ) will be replaced by the value of the object named in the wrapped part of the expression. Thus foo == .(bar) will look for an object named bar and insert the value of bar into the expression. If bar contained 1.3 then the result after applying bquote(foo == .(bar)) would be similar to expression(foo == 1.3).

The rest of my function addMyLegend() should be fairly self explanatory, if not read ?legend. Note you can pass on any arguments to legend() via the ... in addMyLegend().

share|improve this answer
    
Can anyone explain why plotmath isn't working here? Am I doing something silly? –  Gavin Simpson May 1 '12 at 11:08
    
Thanks, in my example V2 is the frequency and V1 is the value. V1 does not always start with 1. Hence the mean should be MEAN=1.66 not 3574.5. –  neversaint May 1 '12 at 11:11
1  
@neversaint whoops, sorry. Will fix. –  Gavin Simpson May 1 '12 at 11:24
1  
Note sure how you get the mean and sd you do (mean(1:6) is not 1.66 etc) –  Gavin Simpson May 1 '12 at 11:26
    

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.