Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to calculate the average time between elements in a row of a data.frame.

> x <- structure(list(`as.Date("2010-12-31")` = structure(c(14974, 14974, 
14974, 14974, 14974), class = "Date"), Date1_P2 = structure(c(14061, 
11566, 11747, 13848, 12965), class = "Date"), Date2_P2 = structure(c(NA, 
10408, 11627, 10074, 6329), class = "Date"), Date3_P2 = structure(c(NA, 
8370, 11566, NA, NA), class = "Date")), .Names = c("as.Date(\"2010-12-31\")", 
"Date1_P2", "Date2_P2", "Date3_P2"), row.names = c("0000001.1", 
"0000004.2", "0000005.2", "0000009.3", "0000010.1"), class = "data.frame")
> x
          as.Date("2010-12-31")   Date1_P2   Date2_P2   Date3_P2
0000001.1            2010-12-31 2008-07-01       <NA>       <NA>
0000004.2            2010-12-31 2001-09-01 1998-07-01 1992-12-01
0000005.2            2010-12-31 2002-03-01 2001-11-01 2001-09-01
0000009.3            2010-12-31 2007-12-01 1997-08-01       <NA>
0000010.1            2010-12-31 2005-07-01 1987-05-01       <NA>

I have written a function that calculates this for each row.

> avgtime <- function(history){
  difftime <- vector("numeric", length=9)
  i <- 2
  while(!is.na(history[i]) & i < 4){
    difftime[i-1] <- history[i-1] - history[i]
    i <- i + 1
  }
  return(mean((unlist(difftime[which(difftime!=0)]))))
}
> for(i in 1:nrow(x)){print(avgtime(x[i,]))}
[1] 913
[1] 2283
[1] 1673.5
[1] 2450
[1] 4322.5

But when I try to apply this to my data.frame, I run into problems.

> apply(x, 1, avgtime)
Error in history[i - 1] - history[i] : 
  non-numeric argument to binary operator

What is the more appropriate apply call?

share|improve this question

1 Answer 1

up vote 4 down vote accepted

apply, when used on a data frame, has the effect of coercing it into a matrix. The mode of the matrix is the mode which can store all of the columns of the data frame; in your case, you have columns of class Date which means the matrix will be character. This is why your apply call fails.

What you can do is convert all the (required) columns of x to numeric before using apply. You're not using any date-specific features of the data so you shouldn't be losing anything.

x[] <- lapply(x, unclass)
apply(x, 1, avgtime)

A more involved, but possibly more elegant approach (since it doesn't involve coercions or matrix/array manipulations) would be to use mapply:

mapply(x[,1], x[,2], x[,3], x[,4], avgtime2)
#or
do.call(mapply, c(list(avgtime2), x))

where avgtime2 is a rewritten version of avgtime to accept multiple inputs rather than 1.

share|improve this answer
    
I considered mapply, but I actually have list about twenty items long, and that was getting tedious. –  gregmacfarlane Jul 3 '13 at 16:28

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.