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I'm trying to automate some graphing, without resorting to traditional loops. I'm having difficulty figuring out how to pass the elements of a row of a dataframe as the arguments of a function. The function looks like:

makeline  <- function(df, var, date, ylab="",xlab="", title="", nbershade=TRUE) {
p <- ggplot(df, aes_string(x=date, y=var)) 
p <- p  + geom_line()

# do some other magical things 
}

Lets say I have a dataframe with a row as follows:

row1 <- c("corn","Price","Date")

Since corn is a dataframe ggplot choked on it as a character. Then I used corn without the quotes and since it is a dataframe with column names "Price" and "Date", I thought this would work:

mapply(makeline,row1[1],row1[2],row1[3])

Anyhow, I'm fumbling trying to figure out efficiently use this new function without resulting to looping through lists. Any pointers appreciated.

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can you show str(df) or head(df)? I can't make any sense of how corn is a dataframe and part of a row... –  alexwhan Mar 12 '13 at 4:24
    
adding the df <- get(df) as below gets me the right thing when feeding row1 with corn enclosed by "". Next to figure out how to pass a dataframe. –  tjbrooks Mar 12 '13 at 14:34

2 Answers 2

up vote 1 down vote accepted

I'm not sure I would recommend this as a strategy, but you can use get to get the data.frame

makeline  <- function(df, var, date, ylab="",xlab="", title="", nbershade=TRUE) {
  df <- get(df)
  p <- ggplot(df, aes_string(x=date, y=var)) 
  p <- p  + geom_line()

# do some other magical things 
}

You may need to adjust the environment for get to work consistently, but it has inherits = TRUE which takes care of most things

data(mtcars)
data(diamonds)

Map(makeline, df = c('mtcars','diamonds'), var = c('cyl','x'), date = c('mpg','y'))
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Thanks. This works. If I - as you do - pass the character vectors in directly, and use the get function for the df it works as I would like. I can even create and name the character vectors outside the mapply, however I seem not to be able to pass the vectors by referencing the colnames if the character vectors are bound together in a data frame. For example: –  tjbrooks Mar 12 '13 at 14:38
    
data2 <- data.frame(rbind(as.character(row1),as.character(row2)), stringsAsFactors=FALSE) where row2 is similar row vector as above. Then mapply(makeline,data2$X1,data2$X2,data2$x3) does not work so well. Clearly their is some issue in either the way the dataframe is put together, or the way I am trying to call the col vectors. The error I get is Error in mapply(makeline, data2$X1, data2$X2, data2$x3) : Zero-length inputs cannot be mixed with those of non-zero length –  tjbrooks Mar 12 '13 at 14:42
    
@tjbrooks, It looks like you have a typo in your column names, data2$x3 should be data2$X3. If you are using mapply, you will need to have SIMPLIFY = FALSE, that is why I used Map, which is a simple wrapper for mapply(..., SIMPLIFY = FALSE) –  mnel Mar 12 '13 at 22:15

try this

mapply(makeline,get(row1[,1]),row1[,2],row1[,3])
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