524

How to check if a vector contains a given value?

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  • 39
    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
  • 13
    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. – IRTFM 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
509

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
  • Your which(v, 'b') gives me an error message: >Error in which(v, 'b') : argument to 'which' is not logical – Capt.Krusty Aug 17 '19 at 10:08
  • The syntax is which(v == b) or any other logical operator. In this case, the return from this would be 2. If v were c("b", "b", "c", "b", "d"), the return to which(v == b) would be 1, 2, 4. – khtad Jun 26 at 21:33
181

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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  • 6
    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
  • @pomber is it fixed? – vasili111 Sep 21 '19 at 23:28
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    The superior readability is.element() vs %in% is subjective. A case can be made that an infix operator is more readable because it eliminates ambiguity in the order of arguments. apple in fruit makes sense, fruit in apple does not. is.element(apple, fruit) or is.element(fruit, apple) could both be right depending on implementation of the is.element function. – rileymcdowell Jan 3 at 16:36
76

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
70

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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  • 9
    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
  • @user3603486: any(1==NA, na.rm=TRUE) returns FALSE. – AkselA Apr 23 '19 at 20:57
37

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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20

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
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    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
13

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
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    Do not use regex for exact matches. This is dangerous and can have unexpected results – David Arenburg Sep 10 '16 at 17:54
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    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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