1

I have data that looks like this:

ID Date1               Date2               Date3
A  2016-04-25 09:15:29 2016-04-25 14:01:19 2016-04-26 13:28:19
B  2016-04-25 09:15:29 2016-04-25 14:01:19 2016-04-26 13:28:19

I want the difference in hours between each date combination (ideally only going forward in time i.e. no negative differences). I know how to do this manually (calculating number of days between 2 columns of dates in data frame):

df$Date2_Date1 <- difftime(df$Date2,df$Date1, units = c("hours"))

However, my real data frame is much bigger and this would be very tedious (but possible). I have read this (Calculate pairwise-difference between each pair of columns in dataframe) and this (R: Compare all the columns pairwise in matrix) which lead me to try this:

nm1 <- outer(colnames(df), colnames(df), paste, sep="_")
indx1 <-  which(lower.tri(nm1, diag=TRUE))
df2 <- outer(1:ncol(df), 1:ncol(df), 
             function(x,y) df[,x]-df[,y])

Which I think is getting me close but my ideal output is this:

ID Date2_Date1 Date3_Date1 Date3_Date2
A  x hours     y hour      ...
B  ..

Are there any nice solutions for this?

3

Here's one way, based on combn() and apply():

df <- data.frame(
    ID=c('A','B'),
    Date1=as.POSIXct(c('2016-04-25 09:15:29','2016-04-25 09:15:29')),
    Date2=as.POSIXct(c('2016-04-25 14:01:19','2016-04-25 14:01:19')),
    Date3=as.POSIXct(c('2016-04-26 13:28:19','2016-04-26 13:28:19')),
    stringsAsFactors=F
);

cmb <- combn(seq_len(ncol(df)-1L)+1L,2L);
res <- abs(apply(cmb,2L,function(x) difftime(df[[x[1L]]],df[[x[2L]]],units='hours')));
colnames(res) <- apply(cmb,2L,function(x,cns) paste0(cns[x[1L]],'_',cns[x[2L]]),names(df));
res;
##      Date1_Date2 Date1_Date3 Date2_Date3
## [1,]    4.763889    28.21389       23.45
## [2,]    4.763889    28.21389       23.45
  • 1
    Thank you that works. I'm having a few problems apply to my real data. I think because I have more ID columns to group by. Does "-1L" in the cmb remove the ID col? – Pete900 May 19 '16 at 10:19
  • 1
    Yes, the -1L removes the ID column since it must not participate in the combinations computation. Regarding grouping, I assumed you did not need to group by ID for this task because your example code does not group by ID (referring to your manual solution df$Date2_Date1 <- difftime(df$Date2,df$Date1, units = c("hours"))). – bgoldst May 19 '16 at 10:21
  • 1
    Yes you are right I don't need to group by anything. I just need to adapt the code to be "-2L". My fault I should have posted exactly by format type. – Pete900 May 19 '16 at 10:23
  • 1
    Ah, I understand. Is it working now? – bgoldst May 19 '16 at 10:24
  • 1
    Almost. I just get this error: Error in as.POSIXct.numeric(time1) : 'origin' must be supplied, when I run "res". But I think that must be a date conversion issue. I'm sure I'll find in on SO. – Pete900 May 19 '16 at 10:25

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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