4

I need to split a sorted unknown length vector in R into "top 10%,..., bottom 10%" So, for example if I have vector <- order(c(1:98928)), I want to split it into 10 different vectors, each one representing approximately 10% of the total length.

Ive tried using split <- split(vector, 1:10) but as I dont know the length of the vector, I get this error if its not multiple

data length is not a multiple of split variable

And even if its multiple and the function works, split() does not keep the order of my original vector. This is what split gives:

split(c(1:10) , 1:2)
$`1`
[1] 1 3 5 7 9

$`2`
[1]  2  4  6  8 10

And this is what I want:

$`1`
[1] 1 2 3 4 5

$`2`
[1]  6  7  8  9 10

Im newbie in R and Ive been trying lots of things without success, does anyone knows how to do this?

7

Problem statement

Break a sorted vector x every 10% into 10 chunks.

Note there are two interpretation for this:

  1. Cutting by vector index:

    split(x, floor(10 * seq.int(0, length(x) - 1) / length(x)))
    
  2. Cutting by vector values (say, quantiles):

    split(x, cut(x, quantile(x, prob = 0:10 / 10, names = FALSE), include = TRUE))
    

In the following, I will make demonstration using data:

set.seed(0); x <- sort(round(rnorm(23),1))

Particularly, our example data are Normally distributed rather than uniformly distributed, so cutting by index and cutting by value are substantially different.

Result

cutting by index

#$`0`
#[1] -1.5 -1.2 -1.1
#
#$`1`
#[1] -0.9 -0.9
#
#$`2`
#[1] -0.8 -0.4
#
#$`3`
#[1] -0.3 -0.3 -0.3
#
#$`4`
#[1] -0.3 -0.2
#
#$`5`
#[1] 0.0 0.1
#
#$`6`
#[1] 0.3 0.4 0.4
#
#$`7`
#[1] 0.4 0.8
#
#$`8`
#[1] 1.3 1.3
#
#$`9`
#[1] 1.3 2.4

cutting by quantile

#$`[-1.5,-1.06]`
#[1] -1.5 -1.2 -1.1
#
#$`(-1.06,-0.86]`
#[1] -0.9 -0.9
#
#$`(-0.86,-0.34]`
#[1] -0.8 -0.4
#
#$`(-0.34,-0.3]`
#[1] -0.3 -0.3 -0.3 -0.3
#
#$`(-0.3,-0.2]`
#[1] -0.2
#
#$`(-0.2,0.14]`
#[1] 0.0 0.1
#
#$`(0.14,0.4]`
#[1] 0.3 0.4 0.4 0.4
#
#$`(0.4,0.64]`
#numeric(0)
#
#$`(0.64,1.3]`
#[1] 0.8 1.3 1.3 1.3
#
#$`(1.3,2.4]`
#[1] 2.4
| improve this answer | |
4
x <- 1:98
y <- split(x, ((seq(length(x))-1)*10)%/%length(x)+1)

Explanation:

seq(length(x)) = 1..98

seq(length(x))-1 = 0..97

(seq(length(x))-1)*10 = (0, 10, ..., 970)

# each number about 10% of values, totally 98
((seq(length(x))-1)*10)%/%length(x) = (0, ..., 0, 1, ..., 1, ..., 9, ..., 9) 

# each number about 10% of values, totally 98
seq(length(x))-1)*10)%/%length(x)+1 = (1, ..., 1, 2, ..., 2, ..., 10, ..., 10)  

# splits first ~10% of numbers to 1, next ~10% of numbers to 2 etc.
split(x, ((seq(length(x))-1)*10)%/%length(x)+1) 
| improve this answer | |
4

If you have your vector as a column (named vec) in a data frame, you can simply do something like this:

df$new_vec <- cut(df$vec , breaks = quantile(df$vec, c(0, .1,.., 1)), 
                labels=1:10, include.lowest=TRUE)
| improve this answer | |
  • I know I shouldn't comment just to say thank you (hence the upvote) but I spent literally hours looking for this solution, and it worked so well. Thanks – Phil May 9 '18 at 12:55
1

If the vector is sorted, then you could just create a group variable with the same length of vector and split on it. In real case, it will require a little more effort since the length of the vector may not be a multiple of 10 but for your toy example, you can do:

n = 2
split(x, rep(1:n, each = length(x)/n))
# $`1`
# [1] 1 2 3 4 5

# $`2`
# [1]  6  7  8  9 10

A real case example, where the vector's length is not a multiple of the number of groups:

vec = 1:13
n = 3
split(vec, sort(seq_along(vec)%%n))
# $`0`
# [1] 1 2 3 4

# $`1`
# [1] 5 6 7 8 9

# $`2`
# [1] 10 11 12 13
| improve this answer | |

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