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If I do something like this:

> df <- data.frame()
> rbind(df, c("A","B","C"))
  X.A. X.B. X.C.
1    A    B    C

You can see the row gets added to the empty data frame. However, the columns get named automatically based on the content of the data.

This causes problems if I later want to:

> df <- rbind(df, c("P", "D", "Q"))

Is there a way to control the names of the columns that get automatically created by rbind? Or some other way to do what I'm attempting to do here?

share|improve this question
    
Why can't you just rename the columns before running the next rbind? colnames(df) <- c("one","two","three") –  Ari B. Friedman Feb 24 '12 at 18:07
    
This may have more to do with the implicit conversion of these strings to factors, see @baha-kev's answer below. –  laslowh Feb 24 '12 at 18:26
2  
Answering your question below. options(stringsAsFactors=FALSE) will fix the conversion to factors. And, no, there is no "need" to use factors while doing this rbind. once the stringsAsFactors option is set, your current rbind steps should work just fine. however, one could probably make the case for a different method of constructing your data.frame. –  Justin Feb 24 '12 at 18:47

2 Answers 2

up vote 6 down vote accepted

@baha-kev has a good answer regarding strings and factors.

I just want to point out the weird behavior of rbind for data.frame:

# This is "should work", but it doesn't:
# Create an empty data.frame with the correct names and types
df <- data.frame(A=numeric(), B=character(), C=character(), stringsAsFactors=FALSE)
rbind(df, list(42, 'foo', 'bar')) # Messes up names!
rbind(df, list(A=42, B='foo', C='bar')) # OK...

# If you have at least one row, names are kept...
df <- data.frame(A=0, B="", C="", stringsAsFactors=FALSE)
rbind(df, list(42, 'foo', 'bar')) # Names work now...

But if you only have strings then why not use a matrix instead? Then it works fine to start with an empty matrix:

# Create a 0x3 matrix:
m <- matrix('', 0, 3, dimnames=list(NULL, LETTERS[1:3]))

# Now add a row:
m <- rbind(m, c('foo','bar','baz')) # This works fine!
m

# Then optionally turn it into a data.frame at the end...
as.data.frame(m, stringsAsFactors=FALSE)
share|improve this answer

Set the option "stringsAsFactors" to False, which stores the values as characters:

df=data.frame(first = 'A', second = 'B', third = 'C', stringsAsFactors=FALSE)
rbind(df,c('Horse','Dog','Cat'))
  first second third
1     A      B     C
2 Horse    Dog   Cat

sapply(df2,class)
      first      second       third 
"character" "character" "character" 

Later, if you want to use factors, you could convert it like this:

df2 = as.data.frame(df, stringsAsFactors=T)
share|improve this answer
    
I'm sorry if I implied that all my data would be letters. They are not, they are arbitrary strings. This does help. I guess another way to skin this cat would be to prevent them from turning into factors, can I do that? –  laslowh Feb 24 '12 at 18:19
    
I think you need to keep your data as factors, if you want to use a data.frame object. I've edited the code in my answer to accept any arbitrary string. –  baha-kev Feb 24 '12 at 18:34
    
Can you explain briefly why "you need to keep your data as factors"? Thanks for your patience, I'm a newb. –  laslowh Feb 24 '12 at 18:43
    
Actually, you don't! I've edited my response -- you can store your values as characters. I learn something new every day! –  baha-kev Feb 24 '12 at 18:54

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