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I'm new to R and to stackoverflow so I'm sorry if the question or it's format isn't ideal...

I'm trying to get some basic statistics from a matrix by using ddply and I wanted to make a process a bit faster by using for -loop. Unfortunately this wasn't as easy as I had thought...

Strain  gene1         gene2      gene3  .   .   .
 A    2.6336700     1.42802     0.935742
 A    2.0634700     2.31232     1.096320
 A    2.5798600     2.75138     0.714647
 B    2.6031200     1.31374     1.214920
 B    2.8319400     1.30260     1.191770
 B    1.9796000     1.74199     1.056490
 C    2.4030300     1.20324     1.069800
 .
 .
 .
----------

for (n in c("gene1","gene2","gene3","gene4")) {
  summary <- ddply(Data, .(Strain), summarise,
                mean = mean(n),
                sd   = sd(n),
                se   = sd(n) / sqrt(length(n)) )
}

In results it reads that mean = 6 and both sd and se are "NA" ... obviously not what I had in mind.

If I get rid of the for -loop and manually insert the column name ("gene1"):

summary <- ddply(Data, .(Strain), summarise,
              mean = mean(gene1),
              sd   = sd(gene1),
              se   = sd(gene1) / sqrt(length(gene1)) )

Now it seems to give me the correct result. Can someone enlighten me on this matter and tell me what I'm doing wrong?

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1  
n is a string that contains "gene1", "gene2", etc. It won't ever evaluate to the vectors named gene1, gene2, etc. You could change each of the uses to get(n), i.e. mean(get(n)). There are likely better ways to rewrite it, though: for example, with data.table. –  David Robinson Sep 10 '13 at 12:34
    
It seems like there are better ways to doing what I originally wanted to do than by using for-loop but still I'm interested; I used mean(get(n)) but the result is "Error in get(n) : invalid first argument". So is there something else that I should be doing? I'm hoping this would lead to some sort of bigger realization so I'm still trying to figure out how to make this work. –  user2764233 Sep 11 '13 at 11:50

2 Answers 2

up vote 1 down vote accepted

I know you didn't ask for it, but here is a solution with aggregate in base.

# One line in base.
aggregate(Data[paste0('gene',1:3)],by=Data['Strain'],
     function(x) c(mean=mean(x),sd=sd(x),se=sd(x)/sqrt(length(x))))
share|improve this answer
    
I wish I could up-vote more than once. I have always wanted this functionality in aggregate, but did not know this was the syntax. So great. –  dayne Sep 10 '13 at 14:53
    
I wish I could up-vote even once since all answers that I have received have been very useful... –  user2764233 Sep 11 '13 at 12:01
    
@user2764233 You can pick your favourite answer by clicking the checkbox to the left of the question. –  nograpes Sep 11 '13 at 16:13

Just use colwise (mean),colwise(sd), and colwise(length). No need for for loop

library(plyr)

ddply(mtcars,.(cyl), colwise(mean))



cyl      mpg     disp        hp     drat       wt     qsec        vs        am     gear     carb
1   4 26.66364 105.1364  82.63636 4.070909 2.285727 19.13727 0.9090909 0.7272727 4.090909 1.545455
2   6 19.74286 183.3143 122.28571 3.585714 3.117143 17.97714 0.5714286 0.4285714 3.857143 3.428571
3   8 15.10000 353.1000 209.21429 3.229286 3.999214 16.77214 0.0000000 0.1428571 3.285714 3.500000

For you example,

ddply(df,.(Strain),colwise(mean))
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