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The purpose of this very simple function is just to transform a date column to a date variable and a numeric time (hourly) column to a factor variable, which will be used with plyr later in the code. I can get this code to run successfully in the command line, but when I attempt to run it in the function I get an error.

 # setting up some fake data
    set.seed(31)
    foo <- function(myHour, myDate){
    rlnorm(1, meanlog=0,sdlog=1)*(myHour) + (150*myDate) 
     }
    Hour <- 1:24
    Day <-1:1080
    dates <-seq(as.Date("2010-01-01"), by = "day", length.out= 1080)
    myData <- expand.grid( Day, Hour)
    names(myData) <- c("Date","Hour")

    myData$Adspend <- apply(myData, 1, function(x) foo(x[2], x[1]))
    myData$Date <-dates

    myData$Demand <-(rnorm(1,mean = 0, sd=1)+.75*myData$Adspend)
    ############################################################# 

    myData

# Function Creation
    AddCal <-function(DF,Date,Time) {

    DF$Date<-as.Date(DF$Date, format="%m/%d/%Y")#Change Date variable into a date type         

    DF$Time<-factor(DF$Time,levels=`c(1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24)) 

    }
#Test Function
    Bob<-AddCal(myData,Date,Hour)
#Error I receive
    Error in `$<-.data.frame`(`*tmp*`, "Time", value = integer(0)) : 
    replacement has 0 rows, data has 25920

I spent about 2 hours searching for answers and trying different things. Because I can run the individual lines of code at the command line and get the desired result, I am assuming this is an advanced coding problem beyond my novice capabilities.

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1 Answer 1

up vote 4 down vote accepted

In your function, replace all instances DF$Time with DF[[Time]] same for DF$Date.
Also see the two comments below from @Dwin & @mrip:

  • Make sure to return a value
  • Make sure to pass string arguments where strings are expected

What's going on:

When you use DF$Time, R is looking for a column named Time in DF. It is not treating Time as the string variable that you expect.

DF[[Time]] on the other hand does treat Time as a variable.

The reason the error only refers to Time and not Date is because Date is both the name of your variable and the name of a column in DF. (If in your function call you would have used something like AddCal(.. Date=Demand) or whatever other column name, you would not get back the results you would expect)

Side Note:

c(1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24)

is equivalent to seq(24) and to 1:24

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1  
Also need to return(DF). –  BondedDust Oct 11 '13 at 0:16
    
@DWin, good catch! I didnt even look that far ahead. –  Ricardo Saporta Oct 11 '13 at 0:18
2  
Ah, so that's what's going on. I was pretty confused. In this case the function call should be Bob<-AddCal(myData,"Date","Hour"). –  mrip Oct 11 '13 at 0:23
    
Thank you Dwin and Ricardo much appreciated –  Eric Blake Oct 11 '13 at 0:43

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