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The following segment of code goes to the else statement when it should be going into the elif.

    #The following line returns 3, 4 or 5 as the exit code.
    $BASH_EXEC adbE.sh "adb $ARGUMENT install $f"
    echo "the return code:$?."
    if [ $? -eq 5 ]
    then
            #do nothing, success
            continue
    elif [ $? -eq 4 ]
    then
            echo "WARNING"
    else
            echo "ERROR"
            break
    fi

This part: echo "the return code:$?." echoes this to the screen: the return code:4.

And it does not display WARNING. It only displays ERROR and then breaks the for loop this code is contained in.

What am i doing wrong?


Here are the variations of the condition compare that i have tried resulting in the same issue:

  1. if [ $? -eq 5 ]
  2. if [ $? -eq "5" ]
  3. if [ $? == 5 ]
  4. if [ $? == "5" ]
  5. if [[ $? -eq 5 ]]
  6. if [[ $? -eq "5" ]]
  7. if [[ $? == "5" ]]
  8. if [[ $? == 5 ]]
share|improve this question
up vote 5 down vote accepted

The reason for this is that $? is the return code for the last executed command. You are running an echo command before the if, so it is the return code of echo that you are testing, which is always going to be 0.

Also, in your case, there is an additional problem caused by the fact that you are retesting the return value in the elif statement. The initial test (i.e. [ $? -eq 5 ]) will also change the value of $?, so retesting it will give an unexpected result.

To fix this situation, save the previous return code before doing the echo, and then use the saved version for all future tests:

ret=$?
echo "the return code:${ret}."
if [ ${ret} -eq 5 ]
then
        #do nothing, success
        continue
elif [ ${ret} -eq 4 ]
then
        echo "WARNING"
else
        echo "ERROR"
        break
fi
share|improve this answer
    
I took the echo "the return code:$?." out and the only command before the if block is the command i want the return from. And it still failed. HOWEVER, i used the variable assigning method you mentioned and it worked. Why did removing echo "the return code:$?." not fix the issue? Just removing echo "the return code:$?." should have worked since the returned value would be 4. Thanks – prolink007 Nov 8 '12 at 15:43
    
You're right, removing the echo should have fixed it. But as you have not posted any code from before this point I cannot tell why it did not :-/ – Lee Netherton Nov 8 '12 at 15:46
2  
Ah! I think I may have cracked it... The test itself is creating a new return value. When you invoke the test command (i.e. the [ $? -eq 5 ]) its main function is to provide a return value. Hence you cannot then test $? again in the elif statement. – Lee Netherton Nov 8 '12 at 16:01
1  
Can you please post that part of the answer in your original answer? This way people can see what the real reason is, without having to read comments. THANKS! – prolink007 Nov 8 '12 at 16:03
1  
Yep. I've changed my original answer to include what we've found here. – Lee Netherton Nov 8 '12 at 16:07

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