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I am attempting to determine where dates are located in a matrix with the following code:

#portret is a list of daily returns for three different stocks from 1980-01-01 to 2010-12
#13.These dates are listed in the first column of the portret data frame
library(quantmod)
library(FRAPO)
getSymbols(c("F","AA","IBM"),from="1980-01-01", to="2010-12-31")
port=cbind(F$F.Adjusted,AA$AA.Adjusted,IBM$IBM.Adjusted)
portret=returnseries(port,"discrete",trim=TRUE)
portret=data.frame(index(portret),coredata=portret)
date.list=seq.Date(as.Date("1990-10-01"),as.Date("2010-10-01"),by="month")
length(date.list)
#this equals 241
date.index=matrix(0,241,2)
for(i in 1:241){
    date.index[i,]=which(portret[,1]==as.character(date.list[i]),arr.ind=TRUE)}

I keep receiving this error: replacement has length zero

Please advise.

share|improve this question
    
Please see updated code. –  user2214069 Apr 23 '13 at 3:59
    
It fails at i = 3. as.character(date.list[3]) is not found in portret[,1]. Try sum(portret[,1] == as.character(date.list[i])). You'll see it's 0. It's not clear what you are trying to do. You have the dates already in portret. What are you trying to do with date.list? –  kmm Apr 23 '13 at 4:10
    
I see... What I am doing in solving for minvar port of portret for every trading day and this I am going back through and collecting specific month values based on dates. So I will have a row of stock weights that I need to reference to the date of portret. That prob isnt the best way of explaining it but thank you for identifying the issue. –  user2214069 Apr 23 '13 at 4:16
    
Have a look at r.789695.n4.nabble.com/5th-of-month-working-day-td1016705.html You problem seems similar. –  kmm Apr 23 '13 at 4:18
    
That would be perfect! Thanks for the tip. I am new to R so I had no idea. –  user2214069 Apr 23 '13 at 4:21

1 Answer 1

the error is because the conditional statement evaluated to FALSE.

ie:

  x      <- 1:5
  x[[2]] <- which(FALSE) 

The problem is that not all dates in date.list are in portret[, 1].
Instead, try this inside your for loop:

w <- which(portret[,1]==as.character(date.list[i]),arr.ind=TRUE)
date.index[i,] <- ifelse(identical(w, integer(0)), c(NA, NA), w)

But better still:

date.index <- 
  sapply(as.character(date.list), function(D) 
      {w <- which(portret[,1]==D, arr.ind=TRUE);
      ifelse(identical(w, integer(0)), c(NA, NA), w)})
share|improve this answer
    
This works really well. I just need to see if I can tailor this code to move up a date or down a date if it is NA. I imagine I can accomplish this in the ifelse portion of the code. –  user2214069 Apr 23 '13 at 4:34
    
would reading it all in, then just removing the rows with NA work? –  Ricardo Saporta Apr 23 '13 at 16:40

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