Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a dataframe which resembles this- for example, 2 columns and multiple rows:

A 2

A 7

B 1

B 3

B 6

C 2

I want to do some operations on the items in column two within each unique value of column 1.

I have

  unique.values <- sort(unique(mydata[,1])) 

This part works for getting each unique value, but I don't know how to associate each unique factor with the values that it takes in column two. I need to be able to operate on each one entirely independently and want to be able to count rows etc. Tried using grep, but couldn't make that work.

Thank you for any help you can give!

share|improve this question

3 Answers 3

Not entirely following your question, but I think this is what you want:

df <- data.frame(read.table(textConnection("
A 2
A 7
B 1
B 3
B 6
C 2")))
library(plyr)
ddply(df, .(V1), nrow)

There are numerous ways to do this kind of thing, so you will need to provide more detail about what you're trying to do if you want a better answer.

Edit

In general, if you have a set of unique values and you want to apply a function to them based on that set, then you can do this with some version of an apply function. For example, in the example above, here are a few different ways to get the average value based on the first column:

ddply(df, .(V1), function(x) data.frame(mean=mean(x[,2])))
do.call("rbind", by(df, df[,1], function(x) data.frame(mean=mean(x[,2]))))
do.call("rbind", lapply(unique(df[,1]), function(a) data.frame(V1=a, mean=mean(df[df[,1]==a,2]))))
share|improve this answer
    
Sorry to be vague. I already have all those values in a dataframe called "mydata", so that part's working fine. The one in the comment is an example for visualization. The new one, unique.values, contains every unique value from column 1. What I'm trying to do is to take each value of col 2 which is associated with an individual value of col 1, and separate them in order to do stuff to them. For example, for Value B, from column 1, I want to be able to runs some math on its corresponding values from column 2: 1, 3 & 6. Is that clearer? And I will start working with what you gave me, thanks! –  ABW Oct 15 '10 at 19:46
    
Yes, just replace nrow with any function you want, and it will do what you describe. –  Shane Oct 15 '10 at 19:54
    
The do.call reflex again? ;-) –  Joris Meys Oct 15 '10 at 23:55
    
@Joris Without using a package, any better suggestions for how to convert a list into a matrix? –  Shane Oct 16 '10 at 0:33
    
cbind(by(df, df[,1], function(x) mean(x[,2]))) (gives the same as the first option), or aggregate(df[,2],list(df[,1]),FUN=mean) (for the second option) –  Joris Meys Oct 16 '10 at 11:39

The ave() function or tapply functions will do what you want. It depends one what you want for output. If you want the output vector to be as long as the input vector ave(), but if you want to reduce the data to the levels of your grouping vector tapply().

ave(mydata[,2], mydata[,1], FUN = length) #FUN can be any function

Or, for the reduced version...

tapply(mydata[,2], mydata[,1], FUN = length) #FUN can be any function
share|improve this answer

Another possibility, using the df of Shane:

aggregate(df[,2],list(df[,1]),FUN=length) 

again, replace length by any other function that works on vectors. You can specify more than one factor in the list, then it will do so for every factor combination.

The difference with ave() is that ave() gives a vector with the length of the original dataframe. aggregate() returns a data frame where one variable is the group indicator. tapply() returns a vector with the length equal to the number of groups. ddply() returns a data frame with a variable for every specified factor.

The by() construct is especially useful if you have to do operations on multiple columns, as it is basically a loop over data frames. It returns a list, that can be converted using Shanes construct, or by using matrix() or rbind() directly. This gives every time a somewhat different structure, but all of them are useful.

Depending on the format you want your output, you can choose one of these possibilities.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.