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Can a bash script detect if it's running in "Ubuntu on Windows" vs native Ubuntu? If so, how?

I ran env on both machines and didn't see any obvious environmental variable differences. I could test for the existence of the /mnt/c directory, but that is not foolproof because that directory could potentially also be present on native Ubuntu.

  • What does 'uname -a' report? – D.Shawley Aug 23 '16 at 1:20
  • uname -a output from Ubuntu on Windows: Linux COMPUTER 3.4.0+ #1 PREEMPT Thu Aug 1 17:06:05 CST 2013 x86_64 x86_64 x86_64 GNU/Linux – Tim Aug 23 '16 at 1:23
57

It looks like /proc/version in Ubuntu on Windows contains:

Linux version 3.4.0-Microsoft (Microsoft@Microsoft.com) (gcc version 4.7 (GCC) ) #1 SMP PREEMPT Wed Dec 31 14:42:53 PST 2014

and my version of Ubuntu has:

Linux version 4.4.0-31-generic (buildd@lgw01-16) (gcc version 5.3.1 20160413 (Ubuntu 5.3.1-14ubuntu2.1) ) #50-Ubuntu SMP Wed Jul 13 00:07:12 UTC 2016

This code is working for me to detect which version of Ubuntu the script is running on:

if grep -q Microsoft /proc/version; then
  echo "Ubuntu on Windows"
else
  echo "native Linux"
fi
| improve this answer | |
  • 4
    From an official source: Searching /proc/version or /proc/sys/kernel/osrelease for the strings "Microsoft" or "WSL" is the best way to do this. – Tim Aug 9 '16 at 22:07
  • 2
    if [[ "$(< /proc/sys/kernel/osrelease)" == *Microsoft ]]; then ... else ... fi is faster since it avoids spawning a grep process – Niklas Holm Jan 11 '19 at 7:43
  • 1
    @NiklasHolm You are wrong. $(...) spawns process. Use read var </proc/sys/kernel/osrelease and then check against var value. – gavenkoa May 15 '19 at 13:23
  • 1
    @gavenkoa I didn't say it doesn't spawn a process, but it is faster than spawning grep. – Niklas Holm May 21 '19 at 16:28
  • @NiklasHolm There is a trick with read var to avoid process spawning, – gavenkoa May 22 '19 at 19:08

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