428

How to check if a vector contains a given value?

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  • 34
    sometimes I ask myself why R just doesn't use the word contains to make it users easier – greg121 Mar 4 '13 at 17:28
  • 10
    consider that "in" is contained in "conta(in)s"; I'd contend that "in" is a considerably concise contender in this context – hedgedandlevered Mar 11 '16 at 16:34
  • 1
    Perhaps with the addition of flanking %-signs that is. The word in is a reserved word in R use in for-loop construction. – 42- Jul 9 '16 at 0:44
  • @greg121 dplyr already has a contains function, but it's used for a different purpose: to select a column in a data frame. For example select(iris, contains("etal")). – Paul Rougieux Mar 14 '18 at 9:59
  • Is there a concise way to do it for real valued numbers with a given precision? – mlt Nov 16 '18 at 19:45
429

Both the match() (returns the first appearance) and %in% (returns a Boolean) functions are designed for this.

v <- c('a','b','c','e')

'b' %in% v
## returns TRUE

match('b',v)
## returns the first location of 'b', in this case: 2
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  • what about getting all appearances, not just the first one? – StatsSorceress Mar 15 '18 at 0:54
  • Maybe I come a little late. which(v, 'b'). Mind the order of the arguments. – Niklas Mertsch Dec 19 '18 at 19:40
153

is.element() makes for more readable code, and is identical to %in%

v <- c('a','b','c','e')

is.element('b', v)
'b' %in% v
## both return TRUE

is.element('f', v)
'f' %in% v
## both return FALSE

subv <- c('a', 'f')
subv %in% v
## returns a vector TRUE FALSE
is.element(subv, v)
## returns a vector TRUE FALSE
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  • 5
    I know the documentation says is.element(x, y) is identical to x %in% y. But, I dont know why, is.elements works when mixing integers and numerics and %in% doesn't – pomber Dec 28 '14 at 6:21
  • @pomber : Could you give an example of this? – discipulus Jun 27 '17 at 6:24
64

The any() function makes for readable code

> w <- c(1,2,3)
> any(w==1)
[1] TRUE

> v <- c('a','b','c')
> any(v=='b')
[1] TRUE

> any(v=='f')
[1] FALSE
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  • 6
    Be aware this behaves differently from %in%: any(1==NA) returns NA, where 1 %in% NA returns FALSE. – user3603486 Mar 23 '17 at 1:34
38

I will group the options based on output. Assume the following vector for all the examples.

v <- c('z', 'a','b','a','e')

For checking presence:

%in%

> 'a' %in% v
[1] TRUE

any()

> any('a'==v)
[1] TRUE

is.element()

> is.element('a', v)
[1] TRUE

For finding first occurance:

match()

> match('a', v)
[1] 2

For finding all occurances as vector of indices:

which()

> which('a' == v)
[1] 2 4

For finding all occurances as logical vector:

==

> 'a' == v
[1] FALSE  TRUE FALSE  TRUE FALSE

Edit: Removing grep() and grepl() from the list for reason mentioned in comments

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  • 6
    As already commented here and here, don't use grep() or regular expressions to find exact matches. – Uwe Jun 13 '17 at 10:04
33

You can use the %in% operator:

vec <- c(1, 2, 3, 4, 5)
1 %in% vec # true
10 %in% vec # false
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18

Also to find the position of the element "which" can be used as

pop <- c(3,4,5,7,13)

which(pop==13)

and to find the elements which are not contained in the target vector, one may do this:

pop <- c(1,2,4,6,10)

Tset <- c(2,10,7)   # Target set

pop[which(!(pop%in%Tset))]
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  • which is actually preferable sometimes for it gives you all the matching positions (as an array), unlike match. Although this was perhaps not what the OP asked for, unlike stackoverflow.com/questions/1169388/… – Fizz Feb 7 '15 at 16:27
  • Why bother with which if you just want to find the elements not in Tset? You can just index pop directly; pop[!pop%in%Tset] – Houshalter Feb 20 '17 at 23:11
11

I really like grep() and grepl() for this purpose.

grep() returns a vector of integers, which indicate where matches are.

yo <- c("a", "a", "b", "b", "c", "c")

grep("b", yo)
[1] 3 4

grepl() returns a logical vector, with "TRUE" at the location of matches.

yo <- c("a", "a", "b", "b", "c", "c")

grepl("b", yo)
[1] FALSE FALSE  TRUE  TRUE FALSE FALSE

These functions are case-sensitive.

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  • 10
    By default, grep takes a regular expression as its first element, so to do an exact match for "b", either use^e$ or add , fixed=TRUE). – reinierpost Jan 7 '16 at 7:45
  • 8
    Do not use regex for exact matches. This is dangerous and can have unexpected results – David Arenburg Sep 10 '16 at 17:54
  • 8
    Yeah, this is a terrible, no good, very bad idea - inefficient and guaranteed to break. E.g. myvar <- 'blah'; grepl('b', myvar, fixed=TRUE) will return TRUE even though 'b' is not in myvar. – user3603486 Mar 23 '17 at 1:31

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