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I have two big tables with some fields in common (but having different field names). What would be the easiest/fastest way to find (and remove) such common records?

For example, I have

set.seed(2)
dt1 <- data.table(dt1field1=1:9,  dt1field2=LETTERS[runif(9,1,5)], dt1field3=letters[runif(9,12,15)])
dt2 <- data.table(dt2field1=1:10, dt2fieldB=LETTERS[runif(10,1,5)], dt2fieldC=letters[runif(10,12,15)])

(sorry for dumb filling)

What would be the data.table syntax to find all records where t1field2=t2fieldB AND t1field3=t2fieldC? (ok, if it is required, I can first rename fields to have equal names for the fields being compared)

Thanks a lot in advance!

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2 Answers 2

up vote 2 down vote accepted

If it works to have one table with only unique values:

setkeyv(dt1, names(dt1)[2:3])
setkeyv(dt2, names(dt2)[2:3])
dt2[dt1, allow.cartesian=TRUE]

Otherwise, I think

dt2[!dt1, allow.cartesian=TRUE] 

Will work for each individual table.

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thanks for an answer! I changed an example a bit, and now it seems that your first code gives not only unique values, but all records from dt1 PLUS those records from dt2 which have same values... –  Vasily A Oct 10 '13 at 19:24
    
That's a good point - I didn't realize that. You can stick with the second part of the answer, OR add [!is.na(dtfield1)] to the end. –  Señor O Oct 10 '13 at 19:38

Something along these lines -

setkeyv(dt1,c('dt1field2','dt1field3'))
setkeyv(dt2,c('dt2fieldB','dt2fieldC'))
dt2[dt1, allow.cartesian = TRUE]
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Results in error. –  Señor O Oct 10 '13 at 18:43
    
Messed the naming convention, fixed now. –  Codoremifa Oct 10 '13 at 18:45
1  
You need allow.cartesian if the table is going to be longer than the longest of the two tables. –  Señor O Oct 10 '13 at 18:47
    
Fair point. Edited. –  Codoremifa Oct 10 '13 at 19:00
    
thank you both guys! (in my case the most useful was dt2[!dt1 code of Señor O) –  Vasily A Oct 10 '13 at 19:39

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