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I want to rename some random columns of a large data frame and I want to use the current column names, not the indexes. Column indexes might change if I add or remove columns to the data, so I figure using the existing column names is a more stable solution. This is what I have now:

mydf = merge(df.1, df.2)
colnames(mydf)[which(colnames(mydf) == "MyName.1")] = "MyNewName"

Can I simplify this code, either the original merge() call or just the second line? "MyName.1" is actually the result of an xts merge of two different xts objects.

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  • Can you provide a small reproducible data set with the desired output?
    – Dason
    Feb 14, 2012 at 19:46
  • You don't need the which there! R accepts boolean in the operator []. colnames(mydf)[colnames(mydf)=="MyName.1"] = "MyNewName" should work! Feb 14, 2012 at 19:48
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    names(mydf)[names(mydf) == "MyName.1"] = "MyNewName" ... about 13 or so characters shorter. Although, you may want to replace a vector in that case, use %in% instead of ==. Feb 14, 2012 at 19:58
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    @BrandonBertelsen, could you repost your comment as an answer? In that way the community can see that the question is being addressed, and you'll get some rep for it. Feb 14, 2012 at 21:56
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    I don't think this should not be tagged data.table, because this is about data frames (even though data tables are mentioned below). The right way to rename columns in data table is by using setnames
    – geneorama
    Jan 9, 2013 at 21:48

5 Answers 5

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The trouble with changing column names of a data.frame is that, almost unbelievably, the entire data.frame is copied. Even when it's in .GlobalEnv and no other variable points to it.

The data.table package has a setnames() function which changes column names by reference without copying the whole dataset. data.table is different in that it doesn't copy-on-write, which can be very important for large datasets. (You did say your data set was large.). Simply provide the old and the new names:

require(data.table)
setnames(DT,"MyName.1", "MyNewName")
# or more explicit:
setnames(DT, old = "MyName.1", new = "MyNewName")
?setnames
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    Heh. That's a problem with doing almost anything to a data.frame. You'd think that just changing factor levels would be quick, too, but it's not. (I'm sure you of all people know that.)
    – IRTFM
    Feb 15, 2012 at 16:49
  • @DWin. Hi. I think setattrib() in data.table could change levels of a column by reference (in a data.frame, too). Obviously needs to be done with care. There could be a new setlevels() function which would change one or many levels (with the same interface as setnames())? Btw, := already adds new factor levels by reference, which is tricky in base. There's quite a bit of C code behind that.
    – Matt Dowle
    Feb 15, 2012 at 17:33
  • Just to note that you can update a list of names too, this is a handy snippet setnames( dt, names(dt), snakecase::to_snake_case(names(dt)) ) May 5, 2019 at 20:00
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names(mydf)[names(mydf) == "MyName.1"] = "MyNewName" # 13 characters shorter. 

Although, you may want to replace a vector eventually. In that case, use %in% instead of == and set MyName.1 as a vector of equal length to MyNewName

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plyr has a rename function for just this purpose:

library(plyr)
mydf <- rename(mydf, c("MyName.1" = "MyNewName"))
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    This function is also now included in the dplyr package as well.
    – Sam Firke
    Apr 29, 2015 at 20:12
4
names(mydf) <- sub("MyName\\.1", "MyNewName", names(mydf))

This would generalize better to a multiple-name-change strategy if you put a stem as a pattern to be replaced using gsub instead of sub.

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  • Thanks, this set me on the right path. I'm now doing: names(df)[grep(".1", names(df))] = c("AName.Col1", "AName.Col2", "AName.Col3") Feb 15, 2012 at 21:04
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You can use the str_replace function of the stringr package:

names(mydf) <- str_replace(names(mydf), "MyName.1", "MyNewName")

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