172

I want to write a bash function that check if a file has certain properties and returns true or false. Then I can use it in my scripts in the "if". But what should I return?

function myfun(){ ... return 0; else return 1; fi;}

then I use it like this:

if myfun filename.txt; then ...

of course this doesn't work. How can this be accomplished?

  • 3
    drop the function keyword, myfun() {...} suffices – glenn jackman Mar 25 '11 at 13:33
  • 2
    What matters to if is the zero-exit status of myfun: if myfun exits with 0, then ... is executed; if it is anything else else ... is executed. – Eelvex Mar 25 '11 at 18:26
  • 29
    @glenn what a useless comment? its an optional keyword, good style to keep it (for example, one could use it to grep for functions in a file) – nhed Mar 26 '11 at 2:49
  • 6
    @nhed: the function keyword is a bashism, and will cause syntax errors in some other shells. Basically, it's either unnecessary or forbidden, so why use it? It's not even useful as a grep target, since it might not be there (grep for () instead). – Gordon Davisson Jun 1 '13 at 7:33
  • 3
    @GordonDavisson: what? there are other shells? ;-) – nhed Jun 1 '13 at 14:41
283

Use 0 for true and 1 for false.

Sample:

#!/bin/bash

isdirectory() {
  if [ -d "$1" ]
  then
    # 0 = true
    return 0 
  else
    # 1 = false
    return 1
  fi
}


if isdirectory $1; then echo "is directory"; else echo "nopes"; fi

Edit

From @amichair's comment, these are also possible

isdirectory() {
  if [ -d "$1" ]
  then
    true
  else
    false
  fi
}


isdirectory() {
  [ -d "$1" ]
}
  • 136
    "Use 0 for true and 1 for false." - mind-boggling. – Bengt Sep 11 '12 at 10:55
  • 39
    For better readability you can use the 'true' command (which does nothing and completes successfully, i.e. returns 0) and 'false' command (which does nothing and completes unsuccessfully, i.e. returns a non-zero value). Also, a function that ends without an explicit return statement returns the exit code of the last executed command, so in the example above, the function body can be reduced to only [ -d "$1" ]. – amichair Mar 2 '13 at 18:47
  • 22
    Bengt: it makes sense wheen you think of it as “error code”: error code 0 = everything went ok = 0 errors; error code 1 = the main thing this call was supposed to do failed; else: fail! look it up in the manpage. – flying sheep Mar 3 '14 at 19:51
  • 6
    It makes sense when you consider that in programming things can usually only succeed in one way, but can fail in infinite ways. Well maybe not infinite, but lots, the odds are stacked against us. Success/Error(s) is not boolean. I think this "Use 0 for true and 1 for false." should read "Use 0 for success and non-zero for failure". – Davos Aug 10 '17 at 3:57
  • 5
    Please don't use 0 and 1. See stackoverflow.com/a/43840545/117471 – Bruno Bronosky Sep 6 '17 at 22:05
112

Why you should care what I say in spite of there being a 250+ upvote answer

It's not that 0 = true and 1 = false. It is: zero means no failure (success) and non-zero means failure (of type N).

While the selected answer is technically "true" please do not put return 1** in your code for false. It will have several unfortunate side effects.

  1. Experienced developers will spot you as an amateur (for the reason below).
  2. Experienced developers don't do this (for all the reasons below).
  3. It is error prone.
    • Even experienced developers can mistake 0 and 1 as false and true respectively (for the reason above).
  4. It requires (or will encourage) extraneous and ridiculous comments.
  5. It's actually less helpful than implicit return statuses.

Learn some bash

The bash manual says (emphasis mine)

return [n]

Cause a shell function to stop executing and return the value n to its caller. If n is not supplied, the return value is the exit status of the last command executed in the function.

Therefore, we don't have to EVER use 0 and 1 to indicate True and False. The fact that they do so is essentially trivial knowledge useful only for debugging code, interview questions, and blowing the minds of newbies.

The bash manual also says

otherwise the function’s return status is the exit status of the last command executed

The bash manual also says

($?) Expands to the exit status of the most recently executed foreground pipeline.

Whoa, wait. Pipeline? Let's turn to the bash manual one more time.

A pipeline is a sequence of one or more commands separated by one of the control operators ‘|’ or ‘|&’.

Yes. They said 1 command is a pipeline. Therefore, all 3 of those quotes are saying the same thing.

  • $? tells you what happened last.
  • It bubbles up.

My answer

So, while @Kambus demonstrated that with such a simple function, no return is needed at all. I think was unrealistically simple compared to the needs of most people who will read this.

Why return?

If a function is going to return its last command's exit status, why use return at all? Because it causes a function to stop executing.

Stop execution under multiple conditions

01  function i_should(){
02      uname="$(uname -a)"
03
04      [[ "$uname" =~ Darwin ]] && return
05
06      if [[ "$uname" =~ Ubuntu ]]; then
07          release="$(lsb_release -a)"
08          [[ "$release" =~ LTS ]]
09          return
10      fi
11
12      false
13  }
14
15  function do_it(){
16      echo "Hello, old friend."
17  }
18
19  if i_should; then
20    do_it
21  fi

What we have here is...

Line 04 is an explicit[-ish] return true because the RHS of && only gets executed if the LHS was true

Line 09 returns either true or false matching the status of line 08

Line 13 returns false because of line 12

(Yes, this can be golfed down, but the entire example is contrived.)

Another common pattern

# Instead of doing this...
some_command
if [[ $? -eq 1 ]]; then
    echo "some_command failed"
fi

# Do this...
some_command
status=$?
if ! $(exit $status); then
    echo "some_command failed"
fi

Notice how setting a status variable demystifies the meaning of $?. (Of course you know what $? means, but someone less knowledgeable than you will have to Google it some day. Unless your code is doing high frequency trading, show some love, set the variable.) But the real take-away is that "if not exist status" or conversely "if exit status" can be read out loud and explain their meaning. However, that last one may be a bit too ambitious because seeing the word exit might make you think it is exiting the script, when in reality it is exiting the $(...) subshell.


** If you absolutely insist on using return 1 for false, I suggest you at least use return 255 instead. This will cause your future self, or any other developer who must maintain your code to question "why is that 255?" Then they will at least be paying attention and have a better chance of avoiding a mistake.

  • 1
    @ZeroPhase 1 & 0 for false & true would be ridiculous. If you have a binary datatype, there is no reason for that. What you are dealing with in bash is a status code that reflects success (singular) and failures (plural). It's "if success do this, else do that." Success at what? Could be checking for true/false, could be checking for a string, integer, file, directory, write permissions, glob, regex, grep, or any other command that is subject to failures. – Bruno Bronosky Sep 18 '17 at 14:56
  • 1
    Oops, though I already did that. Taken care of now. :) – some Oct 3 '17 at 16:47
  • 3
    Avoiding the standard use of 0/1 as a return value just because it's obtuse and prone to confusion is silly. The entire shell language is obtuse and prone to confusion. Bash itself uses the 0/1 = true/false convention in its own true and false commands. That is, the keyword true literally evaluates to a 0 status code. In addition, if-then statements by nature operate on booleans, not success codes. If an error happens during a boolean operation, it should not return true or false but simply break execution. Otherwise you get false positives (pun). – Beejor Dec 18 '17 at 21:26
  • 1
    @BrunoBronosky I read your answer and I think I understand the distinction between the content pipeline (stdin->stdout) and the error codes in return values. Yet, I don't understand why using return 1 should be avoided. Assuming I have a validate function I find it reasonable to return 1 if the validation fails. After all, that is a reason to stop the execution of a script if it isn't handled properly (e.g., when using set -e). – JepZ Nov 4 '18 at 14:46
  • 1
    @Jepz that’s a great question. You are correct that return 1 is valid. My concern is all the comments here saying “0=true 1=false is [insert negative word]”. Those people are likely to read your code some day. So for them seeing return 255 (or 42 or even 2) should help them think about it more and not mistake it as “true”. set -e will still catch it. – Bruno Bronosky Nov 5 '18 at 15:28
30
myfun(){
    [ -d "$1" ]
}
if myfun "path"; then
    echo yes
fi
# or
myfun "path" && echo yes
  • 1
    What about negation? – einpoklum Nov 26 '16 at 21:44
  • What about it, @einpoklum? – Mark Reed Sep 8 '17 at 22:18
  • @MarkReed: I meant, add the "else" case to your example. – einpoklum Sep 8 '17 at 23:37
  • myfun "path" || echo no – Hrobky Mar 12 '18 at 0:06
13

Be careful when checking directory only with option -d !
if variable $1 is empty the check will still be successfull. To be sure, check also that the variable is not empty.

#! /bin/bash

is_directory(){

    if [[ -d $1 ]] && [[ -n $1 ]] ; then
        return 0
    else
        return 1
    fi

}


#Test
if is_directory $1 ; then
    echo "Directory exist"
else
    echo "Directory does not exist!" 
fi
  • 1
    I am uncertain as to how this answers the question asked. While it is nice to know that an empty $1 can return a true when empty, it does not provide any insight into how to return true or false from a bash function. I would suggest creating a new question "What happens when you do a test on an empty shell variable?" And then posting this as the answer. – DRaehal Feb 17 '14 at 15:48
  • 3
    Note, that if you add proper quoting to $1 ("$1") then you don't need to check for an empty variable. The [[ -d "$1" ]] would fail because this "" is not a directory. – morgents May 20 '16 at 7:49
1

It might work if you rewrite this function myfun(){ ... return 0; else return 1; fi;} as this function myfun(){ ... return; else false; fi;}. That is if false is the last instruction in the function you get false result for whole function but return interrupts function with true result anyway. I believe it's true for my bash interpreter at least.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.