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dataframe - R: Split unbalanced list in data.frame column

Suppose you have a data frame with the following structure:

df <- data.frame(a=c(1,2,3,4), b=c("job1;job2", "job1a", "job4;job5;job6", "job9;job10;job11"))

where the column b is a semicolon-delimited list (unbalanced by row). The ideal data.frame would be:

id,job,jobNum
1,job1,1
1,job2,2
...
3,job6,3
4,job9,1
4,job10,2
4,job11,3

I have a partial solution that takes almost 2 hours (170K rows):

# Split the column by the semicolon.  Results in a list.
df$allJobs <- strsplit(df$b, ";", fixed=TRUE)

# Function to reshape column that is a list as a data.frame
simpleStack <- function(data){
    start <- as.data.frame.list(data)                       
    names(start) <-c("id", "job")
    return(start)
}
# pylr!
system.time(df2 <- ddply(df, .(id), simpleStack))

It appears to be a size issue, because if I run

system.time(df2 <- ddply(df[1:4000,c("id", "allJobs")], .(id), simpleStack))

it only takes 9 seconds. First converting to a set of data.frames with sapply (with a different function) is fast, but the required `rbind' takes even longer.

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1 Answer

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#Split by ; as before
allJobs <- strsplit(df$b, ";", fixed=TRUE)

#Replicate a by the number of jobs in each case
n <- sapply(allJobs, length)
id <- rep(df$a, times = n)

#Turn allJobs into a vector
job <- unlist(allJobs)

#Retrieve position of each job
jobNum <- unlist(lapply(n, seq_len))

#Combine into a data frame
df2 <- data.frame(id = id, job = job, jobNum = jobNum)

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