1

Consider this vector:

-3
4
5
-2
4
-5
6
-1
-1
-1
-8
7

What is a simple way in R(e.g. without ugly loops) for counting how many "sign switches" are present for adjacent elements?

In this example we would have 7 switches:

-3 to 4
5 to -2 
-2 to 4
4 to -5
-5 to 6
6 to -1
-8 to 7

2 Answers 2

4

Here's a function that does the trick:

# Given a numeric array x, this returns the number of sign changes
nSignChanges <- function(x) {
    signs <- sign(x)
    sum(signs[-1] != signs[-length(x)])
}

a <- c(-3, 4, 5, -2, 4, -5, 6, -1, -1, -1, -8, 7)
nSignChanges(a)
2
  • 2
    Way faster than rle, and instead of running sign over the vector twice, a quick x<-sign(x) could be added.
    – Thell
    Apr 22, 2014 at 14:17
  • @Thell I've incorporated your suggestion. Thanks. Apr 22, 2014 at 14:29
1

My favorite function to the rescue:

rle(sign(your_vector))

Example, where I assume you have no zeroes:

foo<- sample(-5:5,30,rep=TRUE)

foo<-foo[foo!=0]
rle(sign(foo))
Run Length Encoding
  lengths: int [1:13] 3 1 2 1 8 5 1 1 1 1 ...
  values : num [1:13] -1 1 -1 1 -1 1 -1 1 -1 1 ...

EDIT: I concede quality to Trimble:

for a vector 1e6 long, microbenchmark returns

Unit: milliseconds
               expr       min        lq    median        uq
 nSignChanges(sfoo)  62.64967  68.94004  70.77263  73.27103
 rSignChanges(sfoo) 128.79518 131.19843 137.15204 137.82534
       max neval
  78.51457    10
 141.93182    10
3
  • +1 for sign, I was trying to make a custom one to use with rle and that is nice Apr 22, 2014 at 13:56
  • Doesn't that give an answer that is too large by one? So something like length(rle(sign(your_vector))[[1]])-1 instead?
    – user2357031
    Apr 22, 2014 at 13:59
  • @JTT I think you're right -- I just whacked that answer out w/o comparing the length to the number of changes. Apr 22, 2014 at 14:26

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