I'm trying to convert a data frame to xts object using the as.xts()-method. Here is my input dataframe q:

q
                      t x  
1  2006-01-01 00:00:00  1  
2  2006-01-01 01:00:00  2  
3  2006-01-01 02:00:00  3

str(q)
    'data.frame':   10 obs. of  2 variables:
 $ t: POSIXct, format: "2006-01-01 00:00:00" "2006-01-01 01:00:00" "2006-01-01 02:00:00" "2006-01-01 03:00:00" ...  
 $ x: int  1 2 3 4 5 6 7 8 9 10

The result is:

> as.xts(q)
Error in as.POSIXlt.character(x, tz, ...) : 
  character string is not in a standard unambiguous format

This is the simplest example I can think of, so it's quite frustrating not getting it to work... Any help is appreciated!

This is clearly documented --- xts and zoo objects are formed by supplying two arguments, a vector or matrix carrying data and Date, POSIXct, chron, ... type supplying the time information (or in the case of zoo the ordering).

So do something like

 qxts <- xts(q[,-1], order.by=q[,1])

and you should be set.

  • 3
    Thanks! You helped me a lot, although the answer was so simple! (It wasn't obvious to me, because I haven't used any of the time series packages before and somehow didn't get that from the documentation). But, thanks again! – user442446 Nov 28 '10 at 15:04
  • 18
    I don't think it's all that obvious either considering that that the 'xts: Extensible Time Series' paper clearly claims that conversion from data.frame is possible. – frankc Sep 28 '11 at 19:53
  • 8
    Add me as another who doesn't think it's that "clearly documented" actually. But thanks to this answer I managed to figure something else out unrelated to the original question. – atomicules Dec 5 '11 at 12:47
  • 4
    @DamienB (and other commenters and up-voters), we are more than happy to accept contributions / patches that make the documentation clearer and/or less of a maze. The great thing about OSS is that you can make a difference (but voicing your opinion, without action, doesn't count). – Joshua Ulrich Oct 10 '12 at 14:24
  • 4
    @DamienB: I "@"ed you because you were most recent and you can only "@" one person in a comment (which sucks). I'm happy to work with contributors to help them really understand, but I cannot have their perspective on what needs clarification. Honest attempts, however imperfect, are greatly appreciated (e.g. see the xts FAQ on R-Forge, written by a SO question-asker). – Joshua Ulrich Oct 12 '12 at 0:38

Well, as.xts assumes by default that the dates are stored in the rownames of the data.frame. Hence the error message. A quick and dirty fix is:

rownames(q) = q[1]
as.xts(q)

But you get an extra column with the dates string. Ideally you would construct the data.frame with the dates as rownames to start with.

  • 2
    Probably should be: rownames(q) = q[[1]] – 42- Oct 3 '13 at 2:36
  • @42, what would be the difference? – Ahmedov Sep 3 '16 at 7:39
  • @Ahmedov q[1] would be list containing a vector. q[[1]] would just be the vector. Might not make a difference if [<-.rownames accepts a list but even if it does, not all class-specific assignment functions do so. – 42- Sep 3 '16 at 16:38

Here's a solution using the tidyquant package, which contains a function as_xts() that coerces a data frame to an xts object. It also contains as_tibble() to coerce xts objects to tibbles ("tidy" data frames).

Recreate the data frame (note that the date-time class is used in "tidy" data frames, but any unambiguous date or date time class can be used):

> q
# A tibble: 3 × 2
                    t     x
               <dttm> <dbl>
1 2006-01-01 00:00:00     1
2 2006-01-01 01:00:00     2
3 2006-01-01 02:00:00     3

Use as_xts() to convert to "xts" class. Specify the argument, date_col = t, to designate the "t" column as the dates to use as row names:

> library(tidyquant)
> as_xts(q, date_col = t)
                    x
2006-01-01 00:00:00 1
2006-01-01 01:00:00 2
2006-01-01 02:00:00 3

The return is an xts object with the proper date or date-times as row names.

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