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I am working with a bash script and I want to execute a function to print a return value:

 function fun1(){
      return 34
    }
    function fun2(){
      local res=$(fun1)
      echo $res
    }

when I execute func2 it does not print "34". Can anybody help me?

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return in your case is essentially the same as exit code which range from 0 - 255. Use echo as suggested by @septi. Exit codes can be captured with $?. –  devnull Jun 27 '13 at 7:26
    
In this case it is much more flexible to already use echo in fun1. It’s the idea of unix-programming: echo sends the results to standard output which then can be reused by other functions with res=$(fun1) - or directly be piped to other functions: function a() { echo 34; } function b() { while read data; do echo $data ; done ;} a | b –  Arne Babenhauserheide Jan 8 at 22:37

4 Answers 4

up vote 17 down vote accepted

Although bash has a return statement, the very only thing you can specify with it is the function's exit status (a value between 0 and 255). So return is not what you want.

You might want to convert your return statement to an echo statement - that way your function output could be captured using $() braces, which seems to be exactly what you want.

Here is an example:

function fun1(){
  echo 34
}

function fun2(){
  local res=$(fun1)
  echo $res
}
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Thanks, but i want to use return.How can I get value?in this case –  mindia Jun 27 '13 at 7:24
    
You need to execute fun1 and then the return value is stored in $?. Although I wouldn't recommend to do that… –  septi Jun 27 '13 at 7:25
3  
+1 for not suggesting $? outright. –  devnull Jun 27 '13 at 7:28
    
Why not use $?? –  Pithikos Aug 29 at 17:48

$(...) captures the text sent to stdout by the command contained within. return does not output to stdout. $? contains the result code of the last command.

fun1 (){
  return 34
}

fun2 (){
  fun1
  local res=$?
  echo $res
}
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Functions in Bash are not functions like in other language; they're actually commands. So functions are used as if they were binaries or scripts fetched from your path. From the perspective of your program logic there should be really no difference.

Shell commands are connected by pipes (aka streams), and not fundamental or user-defined data types, as in "real" programming languages. There is no such thing like a return value for a command, maybe mostly because there's no real way to declare it. It could occur on the man-page, or the --help output of the command, but both are only human-readable and hence are written to the wind.

When a command wants to get input it reads it from its input stream, or the argument list. In both cases text strings have to be parsed.

When a command wants to return something it has to echo it to its output stream. Another oftenly practiced way is to store the return value in dedicated, global variables. Writing to the output stream is clearer and more flexible, because it can take also binary data. For example, you can return a BLOB easily:

encrypt() {
    gpg -c -o- $1 # encrypt data in filename to stdout (asks for a passphrase)
}

encrypt public.dat > private.dat # write function result to file

As others have written in this thread, the caller can also use command substitution $() to capture the output.

Parallely, the function would "return" the exit code of gpg (GnuPG). Think of the exit code as a bonus that other languages don't have, or, depending on your temperament, as a "Schmutzeffekt" of shell functions. This status is, by convention, 0 on success or an integer in the range 1-255 for something else. To make this clear: return (like exit) can only take a value from 0-255, and values other than 0 are not necessarily errors, as is often asserted.

When you don't provide an explicit value with return the status is taken from the last command in a Bash statement/function/command and so forth. So there is always a status, and return is just an easy way to provide it.

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The return statement sets the exit code of the function, much the same as exit will do for the entire script.

The exit code for the last command is always available in the $? variable.

function fun1(){
  return 34
}

function fun2(){
  local res=$(fun1)
  echo $? # <-- Always echos 0 since the 'local' command passes.

  res=$(fun1)
  echo $?  #<-- Outputs 34
}
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