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I've got a data frame that I read from a file like this:

name, points, wins, losses, margin
joe, 1, 1, 0, 1
bill, 2, 3, 0, 4
joe, 5, 2, 5, -2
cindy, 10, 2, 3, -2.5

etc.

I want to average out the column values across all rows of this data, is there an easy way to do this in R?

For example, I want to get the average column values for all "Joe's", coming out with something like

joe, 3, 1.5, 2.5, -.5
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4 Answers

up vote 10 down vote accepted

After loading your data:

df <- structure(list(name = structure(c(3L, 1L, 3L, 2L), .Label = c("bill", "cindy", "joe"), class = "factor"), points = c(1L, 2L, 5L, 10L), wins = c(1L, 3L, 2L, 2L), losses = c(0L, 0L, 5L, 3L), margin = c(1, 4, -2, -2.5)), .Names = c("name", "points", "wins", "losses", "margin"), class = "data.frame", row.names = c(NA, -4L))

Just use the aggregate function:

> aggregate(. ~ name, data = df, mean)
   name points wins losses margin
1  bill      2  3.0    0.0    4.0
2 cindy     10  2.0    3.0   -2.5
3   joe      3  1.5    2.5   -0.5
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this answer was perfect, thank you! –  Dan Q Mar 20 '11 at 2:50
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Obligatory plyr and reshape solutions:

library(plyr)
ddply(df, "name", function(x) mean(x[-1]))


library(reshape)
cast(melt(df), name ~ ..., mean)
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I have yet another way. I show it on other example.

If we have matrix xt as:

a b c d
A 1 2 3 4
A 5 6 7 8
A 9 10 11 12
A 13 14 15 16
B 17 18 19 20
B 21 22 23 24
B 25 26 27 28
B 29 30 31 32
C 33 34 35 36
C 37 38 39 40
C 41 42 43 44
C 45 46 47 48

One can compute mean for duplicated columns in few steps:
1. Compute mean using aggregate function
2. Make two modifications: aggregate writes rownames as new (first) column so you have to define it back as a rownames...
3.... and remove this column, by selecting columns 2:number of columns of xa object.

xa=aggregate(xt,by=list(rownames(xt)),FUN=mean)
rownames(xa)=xa[,1]
xa=xa[,2:5]

After that we get:

a b c d
A 7 8 9 10
B 23 24 25 26
C 39 40 41 42

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And a data.table solution for easy syntax and memory efficiency

library(data.table)
DT <- data.table(df)
DT[,lapply(.SD, mean), by = name]
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