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I have the following two functions defined in my .bash_functions (which gets sourced into .bashrc):

up() {
  if (($# == 0)); then
    cd ..
  else
    for basename; do
      local result=$(_foo)
      echo $result
      cd $result
    done
  fi
}

_foo() {
  echo ${PWD%/$1/*}/$basename
}

While I can execute _foo, when i execute up, up doesn't seem to know _foo. Am I doing something wrong here, or is this just not possible?

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2 Answers 2

up vote 1 down vote accepted

It does "know" _foo, but you don't pass a parameter to _foo, so probably that's causing the confusion.

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1  
It sees basename just fine. Variables are global unless declared local. The problem is that _foo() expects an argument ($1) and isn't getting passed one. This is what your example is actually illustrating, by the way. –  Dennis Williamson May 4 '12 at 11:10
    
uhmm.. that was dumb. updated. thx –  Karoly Horvath May 4 '12 at 11:18

Bash scripts are executed sequentially. In your case, _foo() could be defined before up() and everything should work fine.

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1  
It doesn't matter what order they're defined as long as they're called after they're defined. up() { _foo; }; _foo() { echo "bar"; }; up works just fine. –  Dennis Williamson May 4 '12 at 14:25
    
Thank you @DennisWilliamson. I didn't know that. –  DerMike May 4 '12 at 14:36

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