262

I have to split a vector into n chunks of equal size in R. I couldn't find any base function to do that. Also Google didn't get me anywhere. Here is what I came up with so far;

x <- 1:10
n <- 3
chunk <- function(x,n) split(x, factor(sort(rank(x)%%n)))
chunk(x,n)
$`0`
[1] 1 2 3

$`1`
[1] 4 5 6 7

$`2`
[1]  8  9 10
8
  • 6
    Yes, it's very unclear that what you get is the solution to "n chunks of equal size". But maybe this gets you there too: x <- 1:10; n <- 3; split(x, cut(x, n, labels = FALSE))
    – mdsumner
    Jul 23 '10 at 14:08
  • both the solution in the question, and the solution in the preceding comment are incorrect, in that they might not work, if the vector has repeated entries. Try this: > foo <- c(rep(1, 12), rep(2,3), rep(3,3)) [1] 1 1 1 1 1 1 1 1 1 1 1 1 2 2 2 3 3 3 > chunk(foo, 2) (gives wrong result) > chunk(foo, 3) (also wrong) Apr 29 '13 at 9:21
  • (continuing preceding comment) why? rank(x) doesn't need to be an integer > rank(c(1,1,2,3)) [1] 1.5 1.5 3.0 4.0 so that's why the method in the question fails. this one works (thanks to Harlan below) > chunk2 <- function(x,n) split(x, cut(seq_along(x), n, labels = FALSE)) Apr 29 '13 at 9:33
  • 2
    > split(foo, cut(foo, 3, labels = FALSE)) (also wrong) Apr 29 '13 at 9:34
  • 1
    As @mathheadinclouds suggests, the example data is a very special case. Examples that are more general would be more useful and better tests. E.g. x <- c(NA, 4, 3, NA, NA, 2, 1, 1, NA ); y <- letters[x]; z <- factor(y) gives examples with missing data, repeated values, that are not already sorted, and are in different classes (integer, character, factor).
    – Kalin
    Feb 21 '18 at 17:39

21 Answers 21

361

A one-liner splitting d into chunks of size 20:

split(d, ceiling(seq_along(d)/20))

More details: I think all you need is seq_along(), split() and ceiling():

> d <- rpois(73,5)
> d
 [1]  3  1 11  4  1  2  3  2  4 10 10  2  7  4  6  6  2  1  1  2  3  8  3 10  7  4
[27]  3  4  4  1  1  7  2  4  6  0  5  7  4  6  8  4  7 12  4  6  8  4  2  7  6  5
[53]  4  5  4  5  5  8  7  7  7  6  2  4  3  3  8 11  6  6  1  8  4
> max <- 20
> x <- seq_along(d)
> d1 <- split(d, ceiling(x/max))
> d1
$`1`
 [1]  3  1 11  4  1  2  3  2  4 10 10  2  7  4  6  6  2  1  1  2

$`2`
 [1]  3  8  3 10  7  4  3  4  4  1  1  7  2  4  6  0  5  7  4  6

$`3`
 [1]  8  4  7 12  4  6  8  4  2  7  6  5  4  5  4  5  5  8  7  7

$`4`
 [1]  7  6  2  4  3  3  8 11  6  6  1  8  4
5
  • 42
    The question asks for n chunks of equal size. This gets you an unknown number of chunks of size n. I had the same problem and used the solutions from @mathheadinclouds.
    – rrs
    Apr 21 '14 at 18:26
  • 4
    As one can see from the output of d1, this answer does not split d into groups of equal size (4 is obviously shorter). Thus it does not answer the question.
    – Calimo
    Jan 23 '15 at 16:39
  • 9
    @rrs : split(d, ceiling(seq_along(d)/(length(d)/n)))
    – gkcn
    Jun 5 '15 at 11:45
  • I know this is quite old but it may be of help to those who stumble here. Although the OP's question was to split into chunks of equal size, if the vector happens not to be a multiple of the divisor, the last chink will have a different size than chunk. To split into n-chunks I used max <- length(d)%/%n. I used this with a vector of 31 strings and obtained a list of 3 vectors of 10 sentences and one of 1 sentence.
    – salvu
    Feb 4 '17 at 12:59
  • @Harlan Is there a way to shuffle the split as well? your solution worked well for me but I would like to make sure the splits are randomly assigned and not just consecutive
    – Spooked
    Oct 21 '20 at 23:22
92
chunk2 <- function(x,n) split(x, cut(seq_along(x), n, labels = FALSE)) 
2
  • This is the fastest way I've tried so far! Setting labels = FALSE speed up twice, and using cut() is 4 times faster than using ceiling(seq_along(x) / n on my data.
    – Drumy
    Oct 21 '20 at 6:25
  • 1
    Correction: this is the fastest among the split() approaches. @verbarmour's answer below is the fastest overall. It is blazing fast because it doesn't have to work with factor, nor does it need to sort. That answer deserves a lot more upvotes.
    – Drumy
    Oct 21 '20 at 7:05
46

A simplified version:

n = 3
split(x, sort(x%%n))

NB: This will only work on numeric vectors.

4
  • I like this as it gives you chunks that are as equally sized as possible (good for dividing up large task e.g. to accommodate limited RAM or to run a task across multiple threads). Jul 21 '16 at 22:13
  • 5
    This is useful, but keep in mind this will only work on numeric vectors. Aug 24 '16 at 17:49
  • @KeithHughitt this can be solved with factors and returning the levels as numeric. Or at least this is how I implemented it.
    – drmariod
    Apr 5 '18 at 7:02
  • @drmariod can also be extended by doing split(x, sort(1:length(x) %% n)) Sep 14 '20 at 19:28
23

Try the ggplot2 function, cut_number:

library(ggplot2)
x <- 1:10
n <- 3
cut_number(x, n) # labels = FALSE if you just want an integer result
#>  [1] [1,4]  [1,4]  [1,4]  [1,4]  (4,7]  (4,7]  (4,7]  (7,10] (7,10] (7,10]
#> Levels: [1,4] (4,7] (7,10]

# if you want it split into a list:
split(x, cut_number(x, n))
#> $`[1,4]`
#> [1] 1 2 3 4
#> 
#> $`(4,7]`
#> [1] 5 6 7
#> 
#> $`(7,10]`
#> [1]  8  9 10
2
  • 2
    This does not work for splitting up the x, y, or z defined in this comment. In particular, it sorts the results, which may or may not be okay, depending on the application.
    – Kalin
    Feb 21 '18 at 17:42
  • Rather, this comment.
    – Kalin
    Feb 21 '18 at 17:48
21

Using base R's rep_len:

x <- 1:10
n <- 3

split(x, rep_len(1:n, length(x)))
# $`1`
# [1]  1  4  7 10
# 
# $`2`
# [1] 2 5 8
# 
# $`3`
# [1] 3 6 9

And as already mentioned if you want sorted indices, simply:

split(x, sort(rep_len(1:n, length(x))))
# $`1`
# [1] 1 2 3 4
# 
# $`2`
# [1] 5 6 7
# 
# $`3`
# [1]  8  9 10
19

This will split it differently to what you have, but is still quite a nice list structure I think:

chunk.2 <- function(x, n, force.number.of.groups = TRUE, len = length(x), groups = trunc(len/n), overflow = len%%n) { 
  if(force.number.of.groups) {
    f1 <- as.character(sort(rep(1:n, groups)))
    f <- as.character(c(f1, rep(n, overflow)))
  } else {
    f1 <- as.character(sort(rep(1:groups, n)))
    f <- as.character(c(f1, rep("overflow", overflow)))
  }
  
  g <- split(x, f)
  
  if(force.number.of.groups) {
    g.names <- names(g)
    g.names.ordered <- as.character(sort(as.numeric(g.names)))
  } else {
    g.names <- names(g[-length(g)])
    g.names.ordered <- as.character(sort(as.numeric(g.names)))
    g.names.ordered <- c(g.names.ordered, "overflow")
  }
  
  return(g[g.names.ordered])
}

Which will give you the following, depending on how you want it formatted:

> x <- 1:10; n <- 3
> chunk.2(x, n, force.number.of.groups = FALSE)
$`1`
[1] 1 2 3

$`2`
[1] 4 5 6

$`3`
[1] 7 8 9

$overflow
[1] 10

> chunk.2(x, n, force.number.of.groups = TRUE)
$`1`
[1] 1 2 3

$`2`
[1] 4 5 6

$`3`
[1]  7  8  9 10

Running a couple of timings using these settings:

set.seed(42)
x <- rnorm(1:1e7)
n <- 3

Then we have the following results:

> system.time(chunk(x, n)) # your function 
   user  system elapsed 
 29.500   0.620  30.125 

> system.time(chunk.2(x, n, force.number.of.groups = TRUE))
   user  system elapsed 
  5.360   0.300   5.663 

Note: Changing as.factor() to as.character() made my function twice as fast.

0
13

A few more variants to the pile...

> x <- 1:10
> n <- 3

Note, that you don't need to use the factor function here, but you still want to sort o/w your first vector would be 1 2 3 10:

> chunk <- function(x, n) split(x, sort(rank(x) %% n))
> chunk(x,n)
$`0`
[1] 1 2 3
$`1`
[1] 4 5 6 7
$`2`
[1]  8  9 10

Or you can assign character indices, vice the numbers in left ticks above:

> my.chunk <- function(x, n) split(x, sort(rep(letters[1:n], each=n, len=length(x))))
> my.chunk(x, n)
$a
[1] 1 2 3 4
$b
[1] 5 6 7
$c
[1]  8  9 10

Or you can use plainword names stored in a vector. Note that using sort to get consecutive values in x alphabetizes the labels:

> my.other.chunk <- function(x, n) split(x, sort(rep(c("tom", "dick", "harry"), each=n, len=length(x))))
> my.other.chunk(x, n)
$dick
[1] 1 2 3
$harry
[1] 4 5 6
$tom
[1]  7  8  9 10
10

Yet another possibility is the splitIndices function from package parallel:

library(parallel)
splitIndices(20, 3)

Gives:

[[1]]
[1] 1 2 3 4 5 6 7

[[2]]
[1]  8  9 10 11 12 13

[[3]]
[1] 14 15 16 17 18 19 20
9

You could combine the split/cut, as suggested by mdsummer, with quantile to create even groups:

split(x,cut(x,quantile(x,(0:n)/n), include.lowest=TRUE, labels=FALSE))

This gives the same result for your example, but not for skewed variables.

7

split(x,matrix(1:n,n,length(x))[1:length(x)])

perhaps this is more clear, but the same idea:
split(x,rep(1:n, ceiling(length(x)/n),length.out = length(x)))

if you want it ordered,throw a sort around it

7

Here's another variant.

NOTE: with this sample you're specifying the CHUNK SIZE in the second parameter

  1. all chunks are uniform, except for the last;
  2. the last will at worst be smaller, never bigger than the chunk size.

chunk <- function(x,n)
{
    f <- sort(rep(1:(trunc(length(x)/n)+1),n))[1:length(x)]
    return(split(x,f))
}

#Test
n<-c(1,2,3,4,5,6,7,8,9,10,11)

c<-chunk(n,5)

q<-lapply(c, function(r) cat(r,sep=",",collapse="|") )
#output
1,2,3,4,5,|6,7,8,9,10,|11,|
0
7

If you don't like split() and you don't like matrix() (with its dangling NAs), there's this:

chunk <- function(x, n) (mapply(function(a, b) (x[a:b]), seq.int(from=1, to=length(x), by=n), pmin(seq.int(from=1, to=length(x), by=n)+(n-1), length(x)), SIMPLIFY=FALSE))

Like split(), it returns a list, but it doesn't waste time or space with labels, so it may be more performant.

1
  • 1
    This is blazing fast!
    – Drumy
    Oct 21 '20 at 7:03
6

I needed the same function and have read the previous solutions, however i also needed to have the unbalanced chunk to be at the end i.e if i have 10 elements to split them into vectors of 3 each, then my result should have vectors with 3,3,4 elements respectively. So i used the following (i left the code unoptimised for readability, otherwise no need to have many variables):

chunk <- function(x,n){
  numOfVectors <- floor(length(x)/n)
  elementsPerVector <- c(rep(n,numOfVectors-1),n+length(x) %% n)
  elemDistPerVector <- rep(1:numOfVectors,elementsPerVector)
  split(x,factor(elemDistPerVector))
}
set.seed(1)
x <- rnorm(10)
n <- 3
chunk(x,n)
$`1`
[1] -0.6264538  0.1836433 -0.8356286

$`2`
[1]  1.5952808  0.3295078 -0.8204684

$`3`
[1]  0.4874291  0.7383247  0.5757814 -0.3053884
5

Simple function for splitting a vector by simply using indexes - no need to over complicate this

vsplit <- function(v, n) {
    l = length(v)
    r = l/n
    return(lapply(1:n, function(i) {
        s = max(1, round(r*(i-1))+1)
        e = min(l, round(r*i))
        return(v[s:e])
    }))
}
0
3

Sorry if this answer comes so late, but maybe it can be useful for someone else. Actually there is a very useful solution to this problem, explained at the end of ?split.

> testVector <- c(1:10) #I want to divide it into 5 parts
> VectorList <- split(testVector, 1:5)
> VectorList
$`1`
[1] 1 6

$`2`
[1] 2 7

$`3`
[1] 3 8

$`4`
[1] 4 9

$`5`
[1]  5 10
1
  • 3
    this will break if there are unequal number of values in each group!
    – Matifou
    Sep 10 '18 at 21:31
2

Credit to @Sebastian for this function

chunk <- function(x,y){
         split(x, factor(sort(rank(row.names(x))%%y)))
         }
2

If you don't like split() and you don't mind NAs padding out your short tail:

chunk <- function(x, n) { if((length(x)%%n)==0) {return(matrix(x, nrow=n))} else {return(matrix(append(x, rep(NA, n-(length(x)%%n))), nrow=n))} }

The columns of the returned matrix ([,1:ncol]) are the droids you are looking for.

2

I need a function that takes the argument of a data.table (in quotes) and another argument that is the upper limit on the number of rows in the subsets of that original data.table. This function produces whatever number of data.tables that upper limit allows for:

library(data.table)    
split_dt <- function(x,y) 
    {
    for(i in seq(from=1,to=nrow(get(x)),by=y)) 
        {df_ <<- get(x)[i:(i + y)];
            assign(paste0("df_",i),df_,inherits=TRUE)}
    rm(df_,inherits=TRUE)
    }

This function gives me a series of data.tables named df_[number] with the starting row from the original data.table in the name. The last data.table can be short and filled with NAs so you have to subset that back to whatever data is left. This type of function is useful because certain GIS software have limits on how many address pins you can import, for example. So slicing up data.tables into smaller chunks may not be recommended, but it may not be avoidable.

1

I have come up with this solution:

require(magrittr)
create.chunks <- function(x, elements.per.chunk){
    # plain R version
    # split(x, rep(seq_along(x), each = elements.per.chunk)[seq_along(x)])
    # magrittr version - because that's what people use now
    x %>% seq_along %>% rep(., each = elements.per.chunk) %>% extract(seq_along(x)) %>% split(x, .) 
}
create.chunks(letters[1:10], 3)
$`1`
[1] "a" "b" "c"

$`2`
[1] "d" "e" "f"

$`3`
[1] "g" "h" "i"

$`4`
[1] "j"

The key is to use the seq(each = chunk.size) parameter so make it work. Using seq_along acts like rank(x) in my previous solution, but is actually able to produce the correct result with duplicated entries.

2
  • 1
    For those concerned that rep(seq_along(x), each = elements.per.chunk) might be too straining on the memory: yes it does. You could try a modified version of my previous suggestion: chunk <- function(x,n) split(x, factor(seq_along(x)%%n))
    – Sebastian
    Sep 19 '18 at 11:13
  • For me, it produces the following error: no applicable method for 'extract_' applied to an object of class "c('integer', 'numeric')
    – sharchaea
    Nov 6 '20 at 9:02
0

Here's yet another one, allowing you to control if you want the result ordered or not:

split_to_chunks <- function(x, n, keep.order=TRUE){
  if(keep.order){
    return(split(x, sort(rep(1:n, length.out = length(x)))))
  }else{
    return(split(x, rep(1:n, length.out = length(x))))
  }
}

split_to_chunks(x = 1:11, n = 3)
$`1`
[1] 1 2 3 4

$`2`
[1] 5 6 7 8

$`3`
[1]  9 10 11

split_to_chunks(x = 1:11, n = 3, keep.order=FALSE)

$`1`
[1]  1  4  7 10

$`2`
[1]  2  5  8 11

$`3`
[1] 3 6 9
-1

This splits into chunks of size ⌊n/k⌋+1 or ⌊n/k⌋ and does not use the O(n log n) sort.

get_chunk_id<-function(n, k){
    r <- n %% k
    s <- n %/% k
    i<-seq_len(n)
    1 + ifelse (i <= r * (s+1), (i-1) %/% (s+1), r + ((i - r * (s+1)-1) %/% s))
}

split(1:10, get_chunk_id(10,3))

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