For a role I'm developing I need to verify that the kernel version is greater than a particular version.

I've found the ansible_kernel value, but is there an easy way to compare this to other versions? I thought I might manually explode the version string on the '.'s & compare the numbers, but I can't even find a friendly filter to explode the version string out, so I'm at a loss.

Thanks in advance.

T

  • for splitting, since ansible 2.0, you can {{ variable.split('.') }}; you can then use a loop using with_together to compare major, minor and patch version each other – guido Sep 29 '16 at 21:56
  • Can you post your playbook? (whatever you have) – helloV Sep 29 '16 at 22:20

There is a test for it:

{{ ansible_distribution_version | version_compare('12.04', '>=') }}

{{ sample_version_var | version_compare('1.0', operator='lt', strict=True) }}
  • 1
    Thanks @konstantin-suvorov. I've now found the docs on this, but can't see find an explanation of what 'strict' does. Do you know where I can find this info? – TobyG Oct 3 '16 at 10:36
  • 1
    See this answer about StrictVersion vs LooseVersion. – Konstantin Suvorov Oct 3 '16 at 11:07

Have you thought of using shell module instead? for example:

   - name: Get Kernel version
     shell: uname -r | egrep '^[0-9]*\.[0-9]*' -o
     register: kernel_shell_output

   - debug: msg="{{ kernel_shell_output.stdout}}"

   - name: Add cstate and reboot bios if kernel is 4.8
     shell: echo "do what yo need to do"
     when: kernel_shell_output.stdout == "4.8"
  • 3
    Using shell instead of modules is ansible anti-pattern. – Konstantin Suvorov Sep 30 '16 at 6:25
  • Also, won't comparing strings not necessarily place the version in the correct order? (I've not tests this) – TobyG Oct 3 '16 at 10:31
  • Shell is one of things that you should generally try to avoid (ie. there by monsters, there)... unless there's "no other way." When there are builtin filters, like version_compare, there's obviously "a better way." – RVT Jul 14 at 2:55

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