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I want to select a different a subset of a dataframe from each column and do and average like this

per <- data.frame(Apocal=c(10,1,2,3,4,0,6),Aporos=c(0,2,1,3,0,5,6),Euker=c(0,3,5,7,0,0,0), fecha=c(1,1,2,2,2,3,3))

temp <-with(per, per[Apocal>0,])
require(plyr)
temp <- ddply(temp, .(fecha), summarise, Apocal = mean(Apocal))

temp <-with(per, per[Aporos>0,])
temp <- ddply(temp, .(fecha), summarise, Aporos = mean(Aporos))

...

And repeat for every column, except fecha, is there any way to automate this with a function or another thing?

Thanks!

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3 Answers 3

up vote 3 down vote accepted

With aggregate:

aggregate(. ~ fecha, data = per, function(x)mean(x[x > 0]))
#   fecha Apocal Aporos Euker
# 1     1    5.5    2.0     3
# 2     2    3.0    2.0     6
# 3     3    6.0    5.5   NaN
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pmean <- function(x,byvar){
  y=x[,-1*byvar]
  colSums(y*(y>0))/colSums(y>0)
}

ddply(per, .(fecha), function(x) pmean(x,4))

Modified version of Arun's soluton.

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colSums(y)/colSums(y>0) is sufficient, no? Adding y = 0 entries will not affect the sum of numerator. –  Arun Apr 19 '13 at 21:08
    
@Arun what if, when some y are negative? say y=c(-1,0,1) –  vinux Apr 20 '13 at 2:05
    
I don't know why, but I assumed that the > is not the intended operator, rather it's !=. If there could be negative values, this is a bad example from the OP and your answer is much nicer to have covered it! I'll delete my post soon. –  Arun Apr 20 '13 at 15:25

If your function is mean you can use the function colMeans normally. It computes mean of all columns (column-wise means). But since you require to compute the mean after removing each column's 0 entries, you can use colSums as follows:

# x gets all columns grouped by `fecha`.
ddply(per, .(fecha), function(x) colSums(x[, -4])/colSums(x[, -4] != 0))
#   fecha Apocal Aporos Euker
# 1     1    5.5    2.0     3
# 2     2    3.0    2.0     6
# 3     3    6.0    5.5   NaN
share|improve this answer
    
you forgot the OP wants to filter out 0 before taking means. –  flodel Apr 19 '13 at 17:21
    
@flodel, yes I suspected I've gotten something wrong. Thanks for pointing it out. Edited. –  Arun Apr 19 '13 at 21:06

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