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I know that using # in a shell script will comment the rest of the line.

I have to pass a variable to a shell script from another file. I am using "export" to do this. The problem is that the value of the variable has a # in it, and so I am not able to get the value in my shell script.

The script I am using is given below

export FILE_NAME=#gclfac*sched$

As you can see the # is in the beginning of the value I am not able to get anything in my shell script.

How can I pass a'#' value in shell script without commenting out the rest of the line? Any help will be appreciated

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Using a # will not necessarily comment the rest of the line. Consider echo foo#bar. The rules are complicated but can roughly be summarized as: # designates a comment only if it is unquoted and preceded by whitespace, a semi-colon, or a pipe symbol. –  William Pursell Jul 19 '12 at 16:32
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2 Answers

export FILE_NAME='#gclfac*sched$'

or

export FILE_NAME="#gclfac*sched$"

script to execute:

#!/bin/bash
set -x
export FILE_NAME='#jfkslj**23948290$'
echo $FILE_NAME "_ $FILE_NAME"

put it to test.sh make it executable (chmod +x test.sh) and run as ./test.sh and post the output here. ps. Is your shell bash (if not, change she-bang [#!/bin/bash at the first string] to your shell and don't forget to write us about it)?

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This is also not working –  user1538033 Jul 19 '12 at 14:18
    
@user1538033 please follow the instructions I've added to my answer. We'll try to figure it out. –  rush Jul 19 '12 at 15:13
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Place your assignment string in double-quotes. So to use your example it would be;

FILE_NAME="#gclfac*sched$"
export FILE_NAME
share|improve this answer
    
I tried this.. But the value is still coming as empty. –  user1538033 Jul 19 '12 at 14:18
    
Sorry @user1538033 I forgot a line-break... I did this in haste earlier. I've edited my original answer above. –  ross_t Jul 19 '12 at 16:55
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