23

I have an aggregated table:

> aggdata[1:4,]
  Group.1 Group.2         x
1       4    0.05 0.9214660
2       6    0.05 0.9315789
3       8    0.05 0.9526316
4      10    0.05 0.9684211

How can I select the x value when I have values for Group.1 and Group.2?

I tried:

aggdata[aggdata[,"Group.1"]==l && aggdata[,"Group.2"]==lamda,"x"]

but that replies all x's.

More info: I want to use this like this:

table = data.frame();
for(l in unique(aggdata[,"Group.1"])) {
    for(lambda in unique(aggdata[,"Group.2"])) {
        table[l,lambda] = aggdata[aggdata[,"Group.1"]==l & aggdata[,"Group.2"]==lambda,"x"]
    }
}

Any suggestions that are even easier and giving this result I appreciate!

13

Use & not &&. The latter only evaluates the first element of each vector.

Update: to answer the second part, use the reshape package. Something like this will do it:

tablex <- recast(aggdata, Group.1 ~ variable * Group.2, id.var=1:2)
# Now add useful column and row names
colnames(tablex) <- gsub("x_","",colnames(tablex))
rownames(tablex) <- tablex[,1]
# Finally remove the redundant first column
tablex <- tablex[,-1]

Someone with more experience using reshape may have a simpler solution.

Note: Don't use table as a variable name as it conflicts with the table() function.

| improve this answer | |
  • Thanks! It seems indeed to select 1 element. Now however, my loop gives the error: "Error in x[[jj]] <- vjj[FALSE] : attempt to select less than one element" Is it still incorrect? – Peter Smit Oct 8 '09 at 9:20
  • That error is generated because you use table[l,lambda] when lambda is less than one. – Rob Hyndman Oct 8 '09 at 9:29
  • I can't figure out what you are trying to do as the group elements are not unique. – Rob Hyndman Oct 8 '09 at 9:33
  • I aggregated a table on L and lambda, taking the mean of some value (aggregate command). So in the table there is a unique value for every combination of Group.1 and Group.2. I would like to construct a table/matrix with two dimensions, Group.1 and Group.2 – Peter Smit Oct 8 '09 at 9:52
24

The easiest solution is to change "&&" to "&" in your code.

> aggdata[aggdata[,"Group.1"]==6 & aggdata[,"Group.2"]==0.05,"x"]
[1] 0.9315789

My preferred solution would be to use subset():

> subset(aggdata, Group.1==6 & Group.2==0.05)$x
[1] 0.9315789
| improve this answer | |
  • 1
    Why would you prefer subset? Just cause it's a bit neater? – naught101 Jul 14 '14 at 5:30
  • @naught101 yes, just because it's simpler and doesn't repeat any elements unnecessarily. – Ken Williams Oct 11 '18 at 14:27
8

There is a really helpful document on subsetting R data frames at: http://www.ats.ucla.edu/stat/r/modules/subsetting.htm

Here is the relevant excerpt:

Subsetting rows using multiple conditional statements: There is no limit to how many logical statements may be combined to achieve the subsetting that is desired. The data frame x.sub1 contains only the observations for which the values of the variable y is greater than 2 and for which the variable V1 is greater than 0.6.

x.sub1 <- subset(x.df, y > 2 & V1 > 0.6)

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