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I have a data.table with this structure:

Classes ‘data.table’ and 'data.frame':  1336 obs. of  5 variables:
 $ timestamp: POSIXct, format: "2013-02-01 00:03:49" "2013-02-01 00:03:49" "2013-02-01 00:07:54" ...
 $ hour     : int  1 1 1 1 1 1 1 1 1 1 ...
 $ price    : num  21 22 21 22 21 22 35 35.5 35.9 38 ...
 $ qty      : num  50 20 50 20 50 20 15 20 3 30 ...
 $ timegroup: int  1 250 506 757 758 1004 1253 1 250 506 ...
 - attr(*, ".internal.selfref")=<externalptr> 

Example data are:

> df
                timestamp hour price qty timegroup
   1: 2013-02-01 00:03:49    1    21  50         1
   2: 2013-02-01 00:03:49    1    22  20         1
   3: 2013-02-01 00:07:54    1    21  50         1
   4: 2013-02-01 00:07:54    1    22  20         1
   5: 2013-02-01 00:11:59    1    21  50         1
  ---                                             
1332: 2013-04-07 00:12:10    1    40  50         1
1333: 2013-04-07 00:12:10    1    47  50         1
1334: 2013-04-07 00:12:10    1    53  15         1
1335: 2013-04-07 00:12:10    1    78  50         1
1336: 2013-04-07 00:12:10    1   345  25         1

And I am trying to clean the data, because there are duplicit entries at different times. For example rows 3 and 4 should be deleted because they are duplicit with row 1 and 2, only registered at different time. I am trying to achieve this by generating groups of timestamps and then comparing the subsequent groups among themselves. But I got stuck at generating the groups of date-times.

groups <- unique(df$timestamp)
df[,timegroup:=which(timestamp==groups)]

but for some unknown reason the timegroup column does not want to create itself. Reason is this error, which I does not help me much

Warning messages:
1: In `==.default`(timestamp, groups) :
  longer object length is not a multiple of shorter object length
2: In `[.data.table`(df, , `:=`(timegroup, which(timestamp == groups))) :
  Supplied 7 items to be assigned to 1336 items of column 'timegroup' (recycled leaving remainder of 6 items).

Also sapply and for loop do work.

Can anyone tell me why? It seems to be somehow connected with the format... Thank you.

share|improve this question
1  
try df[,timegroup:=which(timestamp==groups), by=timestamp]. The problem is that timestamp and groups are both vectors of unequal length. –  Señor O May 9 '13 at 21:26
    
how, prosaic, thanks a lot, solved my problem. –  tomaskrehlik May 9 '13 at 21:29
1  
and also row 1=5? –  eddi May 9 '13 at 21:35
2  
@tomaskrehlik, sorry I don't follow your last statement. Am I the only one not understanding the problem yet? :) –  Arun May 9 '13 at 21:38
1  
@tomaskrehlik, as Arun pointed out, I dont think my answer actually resolves the issue. I tried to remove it, but since it was marked as accepted, I cannot. Please feel free to mark it as unaccepted –  Ricardo Saporta May 11 '13 at 16:11
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1 Answer

up vote 2 down vote accepted

The answer to your immediate problem is this:

df[, timegroup := .GRP, by = timestamp]

I don't think I understand too well the general problem you're facing to suggest a solution for that.

My relatively wild guess is that you want this:

df = data.table(timestamp = c(1,1,2,2,3,3), var1 = c(1,2,1,2,1,3), var2 = c(1,2,1,2,1,4))
groups = unique(df$timestamp)
groups.duplicated = c(FALSE, sapply(seq_along(groups)[-1], function(i) {
    identical(df[timestamp == groups[i-1],-1,with=F],
              df[timestamp == groups[i],-1,with=F])
}))

df[timestamp %in% groups[!groups.duplicated]]
#   timestamp var1 var2
#1:         1    1    1
#2:         1    2    2
#3:         3    1    1
#4:         3    3    4
share|improve this answer
    
what's i here? –  Arun May 9 '13 at 22:08
    
@Arun: the sapply loops over unique timestamps, so i is the index of the timestamp (the .GRP above if you wish) –  eddi May 9 '13 at 22:14
    
I get this error. Error in i - 1 : non-numeric argument to binary operator when I copy/paste your code. –  Arun May 9 '13 at 22:20
    
@Arun - added some test data - works on that for me –  eddi May 9 '13 at 22:25
1  
Yes now I see what you mention. I guess we both understand it different. It's still not clear to me. I guess we leave the OP decide :). –  Arun May 9 '13 at 23:06
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