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 have the following function which works fine:

d16<-function(x) {
  delay<-difftime(tail(x$date.time[x$station == "L4"],1),
              x$date.time[x$station == "L4"][1],units="mins")

  return (delay)
}

I have many functions exactly the same as this however the "L4" changes to a different value e.g. "L5" and so would be:

d17<-function(x) {
  delay<-difftime(tail(x$date.time[x$station == "L5"],1),
              x$date.time[x$station == "L5"][1],units="mins")

  return (delay)
}

Is it possible to write this into the code so that it changes automatically, rather than writing the function over and over again

some sample data:

structure(list(date.time = structure(c(1365923863, 1365923895, 
1365923931, 1365923950, 1365923965, 1368143290, 1368143310, 1368143370, 
1368164838, 1368165029, 1368165346, 1368165376, 1368165474, 1368165497, 
1368165536, 1368165574, 1368165608, 1368165626, 1368165661, 1368165719, 
1368165736, 1368165858, 1368165923, 1368165952, 1368165991, 1368175156, 
1368175173, 1368175193), class = c("POSIXct", "POSIXt"), tzone = ""), 
station = c("L4", "L4", "L4", "L4", "L4", "L5", "L5", 
"L5", "L5", "L5", "L5", "L5", "L5", "L5", "L5", "L5", 
"L5", "L5", "L5", "L5", "L5", "L5", "R05", "L5", "L5", 
"L5", "L5", "L5"), code = c(10897, 10897, 10897, 10897, 
10897, 10897, 10897, 10897, 10897, 10897, 10897, 10897, 10897, 
10897, 10897, 10897, 10897, 10897, 10897, 10897, 10897, 10897, 
10897, 10897, 10897, 10897, 10897, 10897)), .Names = c("date.time", 
"station", "code"), row.names = c(26L, 27L, 28L, 29L, 30L, 3038L, 
3039L, 3040L, 3059L, 3060L, 3061L, 3062L, 3063L, 3064L, 3065L, 
3066L, 3067L, 3068L, 3069L, 3070L, 3071L, 3072L, 3073L, 3074L, 
3075L, 3076L, 3077L, 3078L), class = "data.frame")
share|improve this question
    
Write a function with two arguments...? Like d_fun <- function(x,station_val){... –  Frank May 19 '13 at 21:29

2 Answers 2

up vote 2 down vote accepted

I think this might be useful to you, since it looks like you are just taking difftimes for each station. You will need to run install.packages("data.table") first.

require(data.table)
dt <- data.table(x)
dt[,difftime(date.time[1],date.time[.N],units="mins")[[1]],by=station]

The result will be a data.frame/data.table listing stations and delays. By default, the delay column will be named "V1". You can alter the last line to set a custom name:

dt[,list(
    delay=difftime(date.time[1],date.time[.N],units="mins")[[1]]
),by=station]

Here's an example. With this data...

set.seed(1)
x <- data.frame(
    date.time=sample(seq.Date(as.Date("2013-05-18"),as.Date("2013-06-02"),1),10),
    station=rep(c("A","B"),5),
    stringsAsFactors=FALSE
)

I get this result:

   station  delay
1:       A -12960
2:       B   7200

Probably your data are already sorted so that delays will always have the same sign, but if not, you can set keys for the data table and the columns will be sorted by them: setkey(dt,station,date.time).

To get the matrix of difftimes, you can use the base R function outer:

firsts <- dt[,date.time[1],by=station][,{names(V1)<-station;V1}]
lasts <- dt[,date.time[.N],by=station][,{names(V1)<-station;V1}]
outer(firsts,lasts,difftime,units="mins")

which gives

       A    B
A -12960 5760
B -11520 7200

Unfortunately, difftime gives weird output, so to get this information in a well-behaved data.frame, we'll need to roll a new function:

my_difftime <- Vectorize(function(x,y)difftime(x,y,units="mins")[[1]])
diffs <- as.data.frame(outer(firsts,lasts,my_difftime))

With the (newly posted) sample data, we get

          L4          L5         R05
L4     -1.70 -37522.1667 -37367.6667
L5  36988.75   -531.7167   -377.2167
R05 37365.97   -154.5000      0.0000

Each entry in this matrix shows the difftime between the first observation of the row station and the last observation of the column station.

share|improve this answer
    
yes this works fine, havent seen that before, however i am not always looking at delay i also look at difftime between two different stations and so the values in the original function may not be same:'tm1<-function(x) { delay<-difftime(x$date.time[x$station == "M2"][1], tail(x$date.time[x$station == "M1"],1,units="mins")) return (delay) }' –  Salmo salar May 19 '13 at 21:53
    
Ah, in that case, you will want to use the method described by Ricardo, and extend it to have three arguments: function(x, station1, station2=station1). This will allow you to continue using a single function. When you pass nothing for station2, it will automatically take station1=station2. –  Frank May 19 '13 at 21:56
    
@Salmosalar Ok, I've edited my answer to address all pairs of stations. –  Frank May 19 '13 at 22:07
    
I see how this works, nice!! however i cant seem to get the output into a dataframe? also i was initially running the code across a list using sapply, again struggling to get your answer into a function as such to do this....realise i have ended up raising more questions. Have edited original and put in example data –  Salmo salar May 19 '13 at 22:39
    
@Salmosalar Yeah, I didn't realize that the outer output was so weird. I've added another idea at the end. –  Frank May 19 '13 at 22:59

It looks like you are simply asking how to include a variable argument in a function.

The solution is to:

  • Step 1: include a variable inside function(...)
  • Step 2: replace the value with in the function with the variable
  • Step 3: when you call the function, supply the appropriate value

For example:

d <- function (x,  var) { 
###                 ^^^    Variable incliuded

  delay<-difftime(tail(x$date.time[x$station == var],1),
###         replace the value with variable name ^^^   

              x$date.time[x$station == var][1],units="mins")
###  ... everywhere the value appears   ^^^^

  return (delay)
}

now when you call the function:

d(x, "L5")
d(x, "L4")
...
etc

You can use as many variables as are needed. eg:

d <- function (x,  var1, var2) 
  {  ..<do something with var1 and var2>.. }

You can give any variable a default value. When you call the function, if you do not change the value of that variable, it takes on its default.

If you sometimes want var2 & var1 to have the same value, but sometimes want them to be different values, then Frank's recommedation (in the comments above) is spot on, which is to give set var2's default value to be the value of var1.

d <- function (x,  var1, var2=var1) 
  {  ..<do something with var1 and var2>.. }    

(Note that R does not evaluate (check for) the value of each variable until it is actually used, which is why this works, but also, make sure not to change the value of var1 within the function before evaluating var2)

share|improve this answer
    
Maybe you can extend your answer to cover the case the OP commented above (different stations). By the way, you say "val" instead of "var" once. –  Frank May 19 '13 at 21:58
    
Yes i know about this, but doesnt get around calling upto 100 functions which are almost exactly the same –  Salmo salar May 19 '13 at 22:58
    
@Salmosalar, if you know about this already, then what is the issue? What are you trying to accomplish that you cannot? –  Ricardo Saporta May 19 '13 at 23:06
    
@Salmosalar It looks like Ricardo is proposing that you use one function -- your own version of d -- and iterate or *apply (sapply,lapply,...) it over your ~100 function arguments. –  Frank May 19 '13 at 23:09

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.