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In brief
I have a PHP and a Java program, either one of which is invoked from my shell depending on a condition. Those two programs are basically two paths of a similar task - one path is taken for one file format and another one for the other. I want those two paths to return a status (success or failure), and then the shell to read the callback and perform some common logic accordingly.

Description
This is a representation -

         |
         |
         \/
     Shell logic
         |
         |
   ______________
   |  check a   |
   |  condition |
   ______________
   |            |
  /\           / \
 /  \         /   \
 |Yes|        |No |
 \  /         \  /
  \/           \/
   |           |
   |           |
   \/          \/
run PHP      run Java 
script        program
   |            |
   |            |
   \/           \/
 callback   callback  
 status      status
   |           |
   \/          \/
 ------------------
 | Detect callback |
 | status in shell |
 -------------------
         |
         |
         \/
    Do something

I invoke those programs like this -

php $dbx_parser_script_path/cli_complete_dbx_parser.php input_dbx_file=$input_file package_root=$package_root

and

java -classpath $package_root/some/jar/file:$package_root/examples/MessagesAndAttachments/src/ Example $input_file $package_root

So, two things -

  • How do I callback from PHP and Java programs.
  • How do I read the callback in shell?

Please note that both the programs echo some messages while they run. So, some kind of reading the printed output cannot be a clean solution. If there is some proper way of reading return value of the executed program in shell and both these languages - Java and PHP, can return some value to the caller script, then that it what I am looking for.

Thanks

Update

Fixed but this strange thing with $?

//after php script execution command - my php script ends with exit(1)
temp=$?
echo "See "$?" "$temp 
echo "with ?"   
if [ $? -eq 1 ]; then
    echo "success"$?
else
    echo "failure"$?
fi

echo "with temp"    
if [ $temp -eq 1 ]; then
    echo "success"$temp 
else
    echo "failure"$temp     
fi

The output is -

See 0 1
with ?
failure1
with temp
success1

Why does the value of $? get lost. Why do I need to store it in another variable?

share|improve this question

1 Answer 1

up vote 2 down vote accepted

In your java program, you can return an exit status like this:

//return exit status of 1
System.exit(1);

Similarly, in PHP:

//exit with an error code of 1
exit(1);

In your shell script, you can check the exit status of the last command executed using $?

Example:

#run java command
java Main args

#the exit status of the previous command is in `$?`. So check it:
if [ $? -eq 1 ]
then
    # do something
fi
share|improve this answer
    
okay I never thought about exit(). Thanks, but there is one strange thing about the shell part of the code. Please check my question update –  Sandeepan Nath Feb 3 '11 at 7:09
1  
$? holds the return status of the previous command. If you run a command and then echo something, $? will have the return status of echo not of your command. That's why you need to store it. –  dogbane Feb 3 '11 at 8:21
    
now it is clear @dogbane.. thank you –  Sandeepan Nath Feb 3 '11 at 13:24

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