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I have the following data frame "DF" which is part of a much larger one:

             X1  X2            X3 X4 X5
4468 2010-03-24   3  1.000000e+00  1  2
7662 2010-03-24   9  3.000000e+00  2  1
1272 2010-03-25   8  2.000000e+00  1  1
1273 2010-03-26   9  0.000000e+00  1  1
1274 2010-03-27   8  0.000000e+00  1  1
4469 2010-03-28   4  0.000000e+00  1  2
7663 2010-03-28   4  3.000000e+00  3  1
8734 2010-03-28   7  4.000000e+00  2  3
1275 2010-03-29   8  0.000000e+00  1  1

As you can see the first column contains a date. What I want to do is as follows: I want to transform this dataframe to a new one "DF2" where there is only 1 row per date with corresponding column values:

X2, the average 
X3, the sum
X4, the maximum

of all previous values per date. X5 is not relevant and can be removed. This would be the result:

             X1  X2            X3 X4
7662 2010-03-24   6  4.000000e+00  2  
1272 2010-03-25   8  2.000000e+00  1  
1273 2010-03-26   9  0.000000e+00  1  
1274 2010-03-27   8  0.000000e+00  1  
8734 2010-03-28   5  7.000000e+00  3  
1275 2010-03-29   8  0.000000e+00  1  

Does anyone know how to accomplish this? Help would be much appreciated!

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3 Answers 3

up vote 3 down vote accepted

You can use the ddply function from the plyr package to do arbitrary aggregations or other transforms by some grouping variable.

For your question the code would look something like:

library(plyr)
result <- ddply(DF, .(X1), function(df) {
  with(df, data.frame( X1=mean(X1), X2=sum(X2), X3=max(X3) ) )
} )

If this is a medium-large project then you may want to set the progress argument to show a progress bar. For a really large problem it can be set to use parallel processing.

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1  
summarise is an alternative option to the anonymous function. –  joran May 13 '13 at 17:23
    
I think parallelization will only help if one of the functions is the speed bottle neck, which would probably not be the case for mean, sum, or max. –  Roland May 13 '13 at 17:27
DF <- read.table(text="             X1  X2            X3 X4 X5
4468 2010-03-24   3  1.000000e+00  1  2
7662 2010-03-24   9  3.000000e+00  2  1
1272 2010-03-25   8  2.000000e+00  1  1
1273 2010-03-26   9  0.000000e+00  1  1
1274 2010-03-27   8  0.000000e+00  1  1
4469 2010-03-28   4  0.000000e+00  1  2
7663 2010-03-28   4  3.000000e+00  3  1
8734 2010-03-28   7  4.000000e+00  2  3
1275 2010-03-29   8  0.000000e+00  1  1",header=TRUE)

library(data.table)

DT <- as.data.table(DF)

DT[,list(X2=mean(X2),X3=sum(X3),X4=max(X4)),by=X1]

#            X1 X2 X3 X4
# 1: 2010-03-24  6  4  2
# 2: 2010-03-25  8  2  1
# 3: 2010-03-26  9  0  1
# 4: 2010-03-27  8  0  1
# 5: 2010-03-28  5  7  3
# 6: 2010-03-29  8  0  1
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not sure if the rownames are important piece of data or not. If so, the DT statement can be DT <- data.table(DF, rowName=rownames(DF)) –  Ricardo Saporta May 13 '13 at 17:05
1  
When the mean of several rows is taken, which rowname would you assign? I don't think rownames are important here. –  Roland May 13 '13 at 17:07
    
Sorry, I should have been more specific. My comment was more of a general sort if the user wants to continue using the DT in lieu of the original DF, beyond the scope of just this specific task –  Ricardo Saporta May 13 '13 at 17:10

There are many ways to do this but here is an sqldf solution:

library(sqldf)
sqldf("select X1, avg(X2), sum(X3), max(X4) from DF group by X1")

The result is:

          X1 avg(X2) sum(X3) max(X4)
1 2010-03-24       6       4       2
2 2010-03-25       8       2       1
3 2010-03-26       9       0       1
4 2010-03-27       8       0       1
5 2010-03-28       5       7       3
6 2010-03-29       8       0       1
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