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Is it possible to source a Bash snippet, but only actually provide a function from inside it if a certain condition holds true?

So what I am asking is that I can unconditionally source all files from a directory, but the sourced files contain the logic to provide functions to the sourcing shell or not.

Example:

  • .bashrc sources whole sub folder .bashrc.d
  • .bashrc.d/xyz provides a function adduser2group which works on old systems where usermod doesn't handle -a -G
  • .bashrc.d/xyz should provide that function only to the sourcing shell if it's running on such old system.

My current method is to conditionally create an alias named adduser after the Debian program (alias adduser=adduser2group). So I only implement the adduser <user> <group> semantics, but still it's helpful.

Is there a solution that doesn't require this workaround? After all this method means a chance for name clashes which I'd prefer to avoid.

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if you're at all familiar with how configure works, it just does 1-time non-destructive tests to determine what environment it's running in, and uses conditional logic to set paths, program names, and params as needed to provide a consistent scripting experinece. Seems like that will work for you too (and that you're almost there anyway). Just my 2cents worth. Good luck. –  shellter Jan 22 '13 at 17:04

3 Answers 3

up vote 2 down vote accepted

You can define the functions you want and, whenever a particular condition holds, you just unset the function:

$ function alpha() { echo $1; }
$ alpha 10
10

Evaluating your condition -- and considering it holds true:

$ if [[ your condition ]]; then unset alpha; fi
$ alpha 10
alpha: command not found
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2  
A lazy approach I've used is to have the function redefine itself the first time it's called. alpha() { if condition; then alpha() { stuff; }; else alpha() { :; }; fi; alpha; } –  kojiro Jan 22 '13 at 17:09
    
@kojiro That's very interesting in cases you know the call will be performed and you don't want any errors to come up. Nice solution! –  Rubens Jan 22 '13 at 17:20
    
@Rubens: great answer. Straight to the point. Wasn't aware I could use unset this way. Thanks. +1 and I'll accept as soon as that works. –  0xC0000022L Jan 22 '13 at 17:41

You can use standard shell logic to control whether functions are defined are not.

lib.sh:

if true; then
    foo() {
        echo foo
    }
else
    bar() {
        echo bar
    }
fi

test:

#!/bin/bash

. ./lib.sh
foo
bar

When running it, only foo is defined:

$ bash test
foo
test: line 5: bar: command not found

Substitute if true with more appropriate logic for your application…

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Thanks for your answer. Good to see this also works. I was under the impression this wouldn't work. +1 –  0xC0000022L Jan 22 '13 at 17:43

As an alternative, it appears that return also does the job. So one can say:

[[ condition ]] || return
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