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#!/bin/bash

if [ -z "$1" ]
  then
    echo "No argument supplied"
    exit
fi

if [ "$1"="abc" ] ; then
abc
exit
fi

if [ "$1" = "def" ]; then
def
exit 1
fi

function abc()
{
    echo "hello"
}

function def()
{
    echo "hi"
}

Here abc is a function which has local definition. But Bash is giving error "./xyz.sh: line 10: abc: command not found". Please give me any Solution?

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Show the whole script, or at least the function definition relative to your if statement. –  Satya Sep 28 '12 at 4:06
3  
The function needs to be declared before the code you are executing. –  jordanm Sep 28 '12 at 4:45

2 Answers 2

up vote 1 down vote accepted

All functions must be declared before they can be used, so move your declarations to the top.

Also, you need to have a space on either side of the = in your string comparison test.

The following script should work:

#!/bin/bash

function abc()
{
    echo "hello"
}

function def()
{
    echo "hi"
}

if [ -z "$1" ]
  then
    echo "No argument supplied"
    exit
fi

if [ "$1" = "abc" ] ; then
   abc
   exit
fi

if [ "$1" = "def" ]; then
   def
   exit 1
fi
share|improve this answer
    
It would be somewhat more succinct and idiomatic to do the conditional as a case statement, by the way. case $1 in abc) abc; exit;; def) def; exit 1;; esac –  tripleee Sep 28 '12 at 8:27
    
And your error message should look like echo "$0: No argument supplied" >&2 with the script name in the message and the redirect to standard error. –  tripleee Sep 28 '12 at 8:28

I suspect there is a problem with your declaration of abc. If you provide the code for your script, we'll be more able to provide specific help, but here is an example of what I think you are trying to achive.

#!/bin/bash -x

abc(){
  echo "ABC. bam!"
}

foo="bar"
if [ "$foo"="bar" ]; then
  abc
else
 echo "No bar for you"
fi
share|improve this answer

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