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I have the matrix:

traits <- matrix(c(1,0,1, 1,0,0, 0,0,0), nrow = 3, ncol=3, byrow=TRUE,
           dimnames = list(c("sp1", "sp2", "sp3"),c("Tr1", "Tr2", "Tr3")))

and a list

species <-c("sp1", "sp2")

how can I filter the 'traits' matrix so it returns just the matches i.e.

traits.filtered<-matrix(c(1,0, 1,1, 0,0), nrow = 2, ncol=3, byrow=TRUE,
           dimnames = list(c("sp1", "sp2"),c("Tr1", "Tr2", "Tr3")))

Thank you, -Elizabeth

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3  
You can index a matrix by its rownames. In your case, try traits[species,]. –  Josh O'Brien Jun 9 '12 at 20:21
1  
Elizabeth, you mention data frame repeatedly, but show an matrix example. Can you clarify which it is so we/you can tidy the Question. –  Gavin Simpson Jun 10 '12 at 7:45
1  
Good point @GavinSimpson I have edited the question so that it is clear I am working with a matrix and a list –  Elizabeth Jun 10 '12 at 12:02

3 Answers 3

up vote 0 down vote accepted

One obvious approach is to subset the traits matrix using species as follows:

traits[species, ]

However, this only works assuming that the row names are unique - if they're not, only the first match is returned.

For that reason, I'd strongly recommended using the more robust:

traits[rownames(traits) %in% species, ]
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Rownames for dataframes are supposed to be unique. When you create doubled rows with ordinary functions, the row.names get sequence numbers append, so I worry that your "more robust" method might be actually more fragile. –  BondedDust Jun 10 '12 at 3:30
1  
Ah. He said 'dataframe' (four times actually) and then used a matrix. If he will be using a matrix then your point is valid. –  BondedDust Jun 10 '12 at 4:57
2  
Tim P This should have been a comment to either my or @ttmaccer answers. –  Gavin Simpson Jun 10 '12 at 7:44
1  
Sorry for the confusion @DWin. I meant matrix throughout and have edited my question appropriately. Tim Ps solution worked a treat. Thank you –  Elizabeth Jun 10 '12 at 12:10
1  
@TimP Sorry; "This" should have been "Your Answer". Coming a number of hours after ttmaccer's Answer, your contribution was really a comment on the optimality of the two Answers provided at that stage. Things like that should be posted as comments, not new Answers. I should have made it clear to what I was referring. –  Gavin Simpson Jun 10 '12 at 18:19
traits[row.names(traits)%in%species,]
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You can index by rownames as stored in species directly using the [ subsetting function:

> traits[species, ]
    Tr1 Tr2 Tr3
sp1   1   0   1
sp2   1   0   0

In this instance you are indexing via a character vector instead of a numeric index vector or a logical vector. See ?"[" for more.

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