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In dataframe df and column a, I would like to replace all is.na and all a=2 <- 0 for all rows.

This has been achieved simply with the following: df[is.na(df$a) | df$a==2, "a"] <- 0

I will be doing this over and over again over different columns (b, c, d, etc) so I just wanted to see if I could build a function. I will simply use the function over and over again. That way, if I need to change which values or which output, it will be a simple task.

Here is a small example. First the dataframe:

df<-data.frame(
  a=sample(c(0,1,2), 10, replace=TRUE)
  )

Now some missing values:

df[sample(nrow(df), 3, FALSE), "a"] <- NA

Finally, the action to replace [which I already mentioned]:

df[is.na(df$a) | df$a==2, "a"] <- 0

I have tried the following function:

f.na<-function(df,col) df[is.na(df[,col]) | df[,col]==2, col]<-0
f.na(df, "a")

I feel like it should work but I cannot figure out why it doesn't. I get:

Error in [.data.frame(df, , col) : undefined columns selected

I know that I cannot use the $ sign so I tried using this [] format after reading some things online. I had used an apply type of function but then later I could not use the results in a dataframe. So I resorted to this way. I guess I can just iterate over and over for each column I need to modify but I thought the function solution would be nice.

Can you suggest anything I should try?

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2 Answers 2

up vote 3 down vote accepted

I can't reproduce your error. However, your function call will not have the desired effect because modifications to df inside your f.na function do not have global scope. Instead, one solution is to have your function return the modified object, like this:

set.seed(37337)
df<-data.frame(
  a=sample(c(0,1,2), 10, replace=TRUE)
)
df[sample(nrow(df), 3, FALSE), "a"] <- NA
f.na<-function(df,col) {
  df[is.na(df[,col]) | df[,col]==2, col] <- 0
  return(df)
}
(df.new <- f.na(df, "a"))
df[is.na(df$a) | df$a==2, "a"] <- 0
print(df)
share|improve this answer
    
Oh, ok. Thank you for the explanation about the scope of arguments as well. This helps, lockedoff. –  jnam27 Jul 13 '12 at 15:40

To access a column in a data frame (or element of a list) by a name stored in another variable you want to use doubled brackets [[]] instead of the single ones.

However, for what you are doing you may want to look into macros instead, see the article on macros in this issue of Rnews and also the defmacro function in the gtools package.

share|improve this answer
    
Thanks Greg, that's also useful. –  jnam27 Jul 13 '12 at 15:42

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