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I want to give each unique id the same column value for first.date based on their first.date for fruit=='apple'.

This is what I have:

 names      dates  fruit first.date
1   john 2010-07-01   kiwi       <NA>
2   john 2010-09-01  apple 2010-09-01
3   john 2010-11-01 banana       <NA>
4   john 2010-12-01 orange       <NA>
5   john 2011-01-01  apple 2010-09-01
6   mary 2010-05-01 orange       <NA>
7   mary 2010-07-01  apple 2010-07-01
8   mary 2010-07-01 orange       <NA>
9   mary 2010-09-01  apple 2010-07-01
10  mary 2010-11-01  apple 2010-07-01

this is what I want:

 names      dates  fruit first.date
1   john 2010-07-01   kiwi 2010-09-01
2   john 2010-09-01  apple 2010-09-01
3   john 2010-11-01 banana 2010-09-01
4   john 2010-12-01 orange 2010-09-01
5   john 2011-01-01  apple 2010-09-01
6   mary 2010-05-01 orange 2010-07-01
7   mary 2010-07-01  apple 2010-07-01
8   mary 2010-07-01 orange 2010-07-01
9   mary 2010-09-01  apple 2010-07-01
10  mary 2010-11-01  apple 2010-07-01

This is my disastrous attempt:

getdates$first.date[is.na]<-getdates[getdates$first.date & getdates$fruit=='apple',]

Thank you in advance

reproducible DF

names<-as.character(c("john", "john", "john", "john", "john", "mary", "mary","mary","mary","mary"))
dates<-as.Date(c("2010-07-01",  "2010-09-01", "2010-11-01", "2010-12-01", "2011-01-01", "2010-05-01", "2010-07-01", "2010-07-01",  "2010-09-01",  "2010-11-01"))
fruit<-as.character(c("kiwi","apple","banana","orange","apple","orange","apple","orange", "apple", "apple")) 
first.date<-as.Date(c(NA, "2010-09-01",NA,NA, "2010-09-01", NA, "2010-07-01", NA, "2010-07-01","2010-07-01"))
getdates<-data.frame(names,dates,fruit, first.date)
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1  
Please format your question properly. One can't read anything! –  asb Jul 16 '13 at 21:48
    
apologies - my bad –  user2363642 Jul 16 '13 at 21:53
    
That's better! Now let me see. :D –  asb Jul 16 '13 at 21:57

1 Answer 1

up vote 3 down vote accepted

It's unclear what you want to do when there are duplicate entries for first.date and apple (for a given name), this will just take the first one:

library(data.table)
dt = data.table(getdates)

dt[, first.date := first.date[fruit == 'apple'][1], by = names]
dt
#    names      dates  fruit first.date
# 1:  john 2010-07-01   kiwi 2010-09-01
# 2:  john 2010-09-01  apple 2010-09-01
# 3:  john 2010-11-01 banana 2010-09-01
# 4:  john 2010-12-01 orange 2010-09-01
# 5:  john 2011-01-01  apple 2010-09-01
# 6:  mary 2010-05-01 orange 2010-07-01
# 7:  mary 2010-07-01  apple 2010-07-01
# 8:  mary 2010-07-01 orange 2010-07-01
# 9:  mary 2010-09-01  apple 2010-07-01
#10:  mary 2010-11-01  apple 2010-07-01
share|improve this answer
    
Hi eddi - the first.date value is the first time a person ever got an apple, the duplicate ensures that this first date does not get overridden by the next date they get an apple. your code seems to work very well as it will do what I want: fill a column with the first date for apples per id. Thank you! –  user2363642 Jul 16 '13 at 22:06
2  
If there are multiple groups and lots of entries per group, this may have poor performance because of vector scan per group. Maybe this is better: DT <- data.table(getdates); setkey(DT, names, fruit); dd <- DT[J(unique(names), "apple"), mult="first"]$dates; DT[, first.date := dd[.GRP], by=names]. That is, if the OP doesn't mind reordering of rows. –  Arun Jul 16 '13 at 22:13
    
Hi Arun, i will have about 6,000 individual people with at least 18 rows each... so your approach may have benefits. Will try it out and report back. Thank you –  user2363642 Jul 16 '13 at 22:23
    
@user2363642, I don't think this (the one I wrote) will be faster for the data dimensions you mention... It's better to benchmark anyways :). –  Arun Jul 16 '13 at 22:31

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