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I have a dataframe with 10 rows

df <- c(1:10)

How do I add another column to the dataframe which has only 5 rows?

df2 <- c(1:5)

Thanks for your help.

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1) c() sticks things into a vector, which is a different object than a data.frame. –  tim riffe Feb 12 '12 at 22:30
    
2) for data.frames, see ?data.frame –  tim riffe Feb 12 '12 at 22:30
1  
3) data.frames must of columns of equal length. for elements of unequal length, use a list(). see ?list –  tim riffe Feb 12 '12 at 22:31
1  
@timriffe That all adds up to a pretty good answer, IMHO. (hint hint hint!) –  joran Feb 12 '12 at 22:51

2 Answers 2

up vote 6 down vote accepted

I'll give some little pointers here. See Tyler's answer a few questions back for a couple links to materials for getting started: convert data.frame column format from character to factor

1) The objects you're making with c() are called vectors, and that is a particular kind of object in R- the most basic and useful kind.

2) A data.frame is a kind of list where all the elements of the list are stuck together as columns and must be of the same length. The columns can be different data types (classes)

3) lists are the most versatile kind of object in R- the elements of a list can be anything- any size, any class. This appears to be what you're asking for.

So for instance:

    mylist <- list(vec1 = c(1:10), vec2 = c(1:5))
    mylist
    $vec1
     [1]  1  2  3  4  5  6  7  8  9 10
    $vec2
     [1] 1 2 3 4 5

There are different ways to get back at the elements of mylist, e.g.

    mylist$vec1
    mylist[1]
    mylist[[1]]
    mylist["vec1"]
    mylist[["vec1"]]

and likely more! Find a tutorial by searching for 'R beginner tutorial' and power through it. Have fun!

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Thank you very much for your very good explanation. I should have been using list instead of data frame. –  adam.888 Feb 13 '12 at 21:49

There are two approaches I know of to get what you're asking for BUT this may not be the best approach to the problem as others have pointed out. What I'm going to show you I myself would not use (I'd opt for the list option most likely as Tim shows).

df <- data.frame(var=1:10)  #notice I created a data.frame vs. the vector you called
new.col <- c(1:5)

#METHOD 1
df$new.col <- c(new.col, rep(NA, nrow(df)-length(new.col)))  #keep as integer
#METHOD 2
df$new.col2 <- c(new.col, rep("", nrow(df)-length(new.col))) #converts to character
df                                         #look at it
str(df)                                    #see what's happening to the columns
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