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I want to set a return value once so it goes into the while loop:

#!/bin/bash
while [ $? -eq 1 ]
do
#do something until it returns 0    
done

In order to get this working I need to set $? = 1 at the beginning, but that doesn't work.

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6 Answers 6

up vote 5 down vote accepted
#!/bin/bash

RC=1

while [ $RC -eq 1 ]
do

  #do something until it returns 0    

  RC=$?
done
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You can use until to handle cases where #do something until it returns 0 returns something other than 1 or 0:

#!/bin/bash

false
until [ $? -eq 0 ]
do
#do something until it returns 0    
done
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You can set an arbitrary exit code by executing exit with an argument in a subshell.

$ (exit 42); echo "$?"
42
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2  
very concise example, thank you –  kurast May 9 '13 at 15:51

I think you can do this implicitly by running a command that is guaranteed to fail, before entering the while loop.

The canonical such command is, of course, false.

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A command guaranteed to fail is wanted here: false. –  chepner May 4 '12 at 12:57
    
@chepner D'oh! Thanks, and fixed of course. –  unwind May 4 '12 at 13:20

false always returns an exit code of 1.

#!/bin/bash
false
while [ $? -eq 1 ]
do
#do something until it returns 0    
done
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Would something like this be what your looking for ?

#!/bin/bash
TEMPVAR=1
while [ $TEMPVAR -eq 1 ]
do
  #do something until it returns 0
  #construct the logic which will cause TEMPVAR to be set 0 then check for it in the 
  #if statement 

  if [ yourcodehere ]; then
     $TEMPVAR=0
  fi
done
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