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I have several data frames df1, df, 2...., df10. Columns (variables) are the same in all of them.

I want to create a new variable within each of them. I can easily do it "manually" as follows:

df1$newvariable <- ifelse(df1$oldvariable == 999, NA, df1$oldvariable)

or, alternatively

df1 = transform(df1, df1$newvariable= ifelse(df1$oldvariable==999, NA, df1$oldvariable)))

Unfortunately I'm not able to do this in a loop. If I write

for (i in names) { #names is the list of dataframes
  i$newvariable <- ifelse(i$oldvariable == 999, NA, i$oldvariable)
}

I get the following output

Error in i$oldvariable : $ operator is invalid for atomic vectors
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2 Answers 2

What I'd do is to pool all data.frame on to a list and then use lapply as follows:

df1 <- as.data.frame(matrix(runif(2*10), ncol=2))
df2 <- as.data.frame(matrix(runif(2*10), ncol=2))
df3 <- as.data.frame(matrix(runif(2*10), ncol=2))
df4 <- as.data.frame(matrix(runif(2*10), ncol=2))

# create a list and use lapply
df.list <- list(df1, df2, df3, df4)
out <- lapply(df.list, function(x) {
    x$id <- 1:nrow(x)
    x
})

Now, you'll have all the data.frames with a new column id appended and out is a list of data.frames. You can access each of the data.frames with x[[1]], x[[2]] etc...

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Thanks for your answer. Not sure I got it, I will study it in detail and express you my comments. –  user1976836 Jan 14 '13 at 13:31

This has been asked many times. The $<- is not capable of translating that "i" index into either the first or second arguments. The [[<- is capable of doing so for the second argument but not the first. You should be learning to use lapply and you will probably need to do it with two nested lapply's, one for the list of "names" and the other for each column in the dataframes. The question is incomplete since it lacks specific examples. Make up a set of three dataframes, set some of the values to "999" and provide a list of names.

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Thanks for the answer. Sorry If my question was incomplete or if I went on a argument treated somewhere else (even though I could not find those questions). I'll reflect on your answer and see if I can come out with some solution. –  user1976836 Jan 14 '13 at 13:28

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