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Is there a fast way of finding which rows in matrix A are present in matrix B? e.g.

m1 = matrix(c(1:6), ncol=2, byrow = T); m2 = matrix(c(1:4), ncol=2, byrow=T);

and the result would be 1, 2.

The matrices do not have the same number of rows (number of columns is the same), and they are somewhat big - from 10^6 - 10^7 number of rows.

The fastest way of doing it, that I know of for now, is:

duplicated(rbind(m1, m2))

Tnx!

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2  
Your solution with duplicated would also return any rows that get repeated within a matrix, even if it appears in only one of the two matrices. Anyway, @MatthewDowle's answer is great. –  David Robinson Feb 16 '12 at 19:00
1  
data.table might be faster because it doesn't use do.call("paste" under the hood. If you prefer duplicated to M2[M1] then duplicated(as.data.table(rbind(m1,m2))) might be faster, for the same reason. Interested to see your timings. –  Matt Dowle Feb 16 '12 at 19:09
    
@David Oh yes, good point about the duplicated approach. –  Matt Dowle Feb 16 '12 at 19:11
    
Duplicate? stackoverflow.com/questions/7943695/matrix-in-matrix (or, at least, 'Look here for other options!') –  Matt Parker Apr 10 '12 at 19:35

1 Answer 1

up vote 16 down vote accepted

A fast way for that size should be :

require(data.table)
M1 = setkey(data.table(m1))
M2 = setkey(data.table(m2))
na.omit(
    M2[M1,which=TRUE]
)
[1] 1 2
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Works as a charm! Took less than 5 sec. –  user680111 Feb 16 '12 at 19:05
3  
@user680111: If MatthewDowle's post solved your problem, don't forget to accept the answer so it can be marked as resolved. –  David Robinson Feb 16 '12 at 19:14

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