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Possible Duplicate:
Get column index from label in a data frame

I need to get the column number of a column given its name.

Supose we have the following dataframe:

df <- data.frame(a=rnorm(100),b=rnorm(100),c=rnorm(100))

I need a function that would work like the following:

getColumnNumber(df,"b")

And it would return

[1] 2

Is there a function like that?

Thanks!

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marked as duplicate by Richie Cotton, Ari B. Friedman, Roman Luštrik, joran, Chase Feb 14 '12 at 16:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 32 down vote accepted
which( colnames(df)=="b" )

Should do it.

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One fast and neat method is :

> match("b",names(df))
[1] 2

That avoids the vector scan that == and which do. If you have a lot of columns, and you do this a lot, then you might like the fastmatch package.

> require(fastmatch)
> fmatch("b",names(df))
[1] 2

fmatch is faster than match, but on subsequent calls it's not just faster, it's instant.

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1  
Learn something new every day. Thanks. – Ari B. Friedman Feb 14 '12 at 13:45
1  
If I'm using just one variable (one column), "match" and "which" both work equally as well for me. However, if I'm using more than one variable, "which" throws errors, while "match" doesn't give me errors. So for my situation, "match" is a superior choice. Thanks! – jeramy townsley Mar 16 at 19:32

Another method which generalizes better to non-exact matching tasks is to use grep:

grep("^b$", colnames(df) )

If you wanted the number of all the column names that begin with "b" to be removed, you would write:

df[ , - grep("^b", colnames(df) )]

That neatly finesses the issue that you cannot use negative indexing with character vectors.

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..especially, if you need to get several column indices the below approach applies:

> df <- data.frame(a=rnorm(100),b=rnorm(100),c=rnorm(100))
> which(names(df)%in%c("b", "c"))
[1] 2 3

if you use this for subsetting df you don't need which()

> df_sub <- df[, names(df)%in%c("b", "c")]
> head(df_sub)
           b          c
1  0.1712754  0.3119079
2 -1.3656995  0.7111664
3 -0.2176488  0.7714348
4 -0.6599826 -0.3528118
5  0.4510227 -1.6438053
6  0.2451216  2.5305453
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