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If I run a custom bash function under shell console:

~/w/dotfiles/ruby [g:master-] ¶ repository_root
/Users/tian/Documents/workspace/dotfiles

And if I run the custom bash function under IRB:

irb(main):001:0> `repository_root`
(irb):1: command not found: repository_root
=> ""

How could I get the same result in IRB?

# declare
repository_root () {
    if git_is_repository ; then
        git_show_repository_root
    fi
}
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3 Answers 3

up vote 1 down vote accepted

Assuming your function is in one of your bash profile files, you want to start up an interactive (-i) login (-l) shell to execute (-c) your function:

output = %x{bash -lic 'repository_root'}
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I have tried this. But it's not giving me the output. –  Tian Chen Oct 7 '12 at 0:14
    
Don't know why it's not running at the first time. Actually this is a better way to go. –  Tian Chen Oct 7 '12 at 10:57
    
Works for me w/o any issues. I'll get down to study the -lic switches now. –  Apoorv Parijat Oct 7 '12 at 18:08

One way to do this is to make a command out of the function.

Here's a short how-to

  1. Create a shell script file that calls the function.
  2. Create a .bin directory in your HOME and add it to $PATH in .bash_rc.
  3. Place the shell script file in .bin.
  4. source .bash_rc to update the $PATH variable you just changed.
  5. Assuming you named the file fnx, just use the back tick operator or exec to run the command - exec("fnx")
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Thanks, I forgot that I could make the script file... –  Tian Chen Oct 6 '12 at 14:20

where is repository_root declared?

.bash_profile? .bashrc?

try to source that file before using repository_root

`. /path/to/file/declaring/repository_root; repository_root`
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it works, but is there better way not required to source the file? –  Tian Chen Oct 6 '12 at 13:15

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