130

How do you pause an R script for a specified number of seconds or miliseconds? In many languages, there is a sleep function, but ?sleep references a data set. And ?pause and ?wait don't exist.

The intended purpose is for self-timed animations. The desired solution works without asking for user input.

  • 5
    @Ricardo, we had a whole discussion on this with Joshua and others and we finally agreed that both "pause" and "sleep" should be in the title. The final title was result of a compromise. And you just step in and without any argument why your title is better rollback to previous revision? Adding "sleep" to the title makes the question much easier to find, because "sleep" is in many languages and there is a high probability that users will search for it. Current title contains a lot of word balast and the important keyword is missing. What was the purpose of your rollback? – TMS Jul 22 '13 at 5:29
  • Google "r sleep" couldn't find it, tried to fix it. – TMS Jan 17 '14 at 15:03
145

See help(Sys.sleep).

For example, from ?Sys.sleep

testit <- function(x)
{
    p1 <- proc.time()
    Sys.sleep(x)
    proc.time() - p1 # The cpu usage should be negligible
}
testit(3.7)

Yielding

> testit(3.7)
   user  system elapsed 
  0.000   0.000   3.704 
| improve this answer | |
  • 1
    Here's the example code from that page. To pause for 3.7 seconds testit <- function(x) { p1 <- proc.time() Sys.sleep(x) proc.time() - p1 # The cpu usage should be negligible } testit(3.7) – Dan Goldstein Jul 23 '09 at 22:29
  • 21
    By the way, help.search("sleep") would have directed you that way. – Dirk Eddelbuettel Jul 23 '09 at 22:51
  • Why you cannot do just Sys.sleep(10)? – Léo Léopold Hertz 준영 Nov 10 '16 at 14:46
  • I think you misunderstand my example and illustration which also measures and hence demonstrates exactly that, – Dirk Eddelbuettel Nov 10 '16 at 14:47
14

Sys.sleep() will not work if the CPU usage is very high; as in other critical high priority processes are running (in parallel).

This code worked for me. Here I am printing 1 to 1000 at a 2.5 second interval.

for (i in 1:1000)
{
  print(i)
  date_time<-Sys.time()
  while((as.numeric(Sys.time()) - as.numeric(date_time))<2.5){} #dummy while loop
}
| improve this answer | |
  • the Sys.sleep() function did not work in my use case, and this was the only way I was able to manage producing the necessary delay. – Pake Apr 3 at 20:53

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