62

I'm doing a simple batch file that requires one argument (you can provide more, but I ignore them).

For testing, this is what I have so far.

if not %1 == "" (
    dir /s/b %1
) else (
    echo no
)

Basically, I want to say if an argument is provided, recursively display all the files in the folder. Otherwise, say no.

It works when I provide an argument, but if I don't provide one it'll just tell me ( was unexpected at this time.

I mean, it works, but I wanted to at least display a user-friendly message explaining why it doesn't work. How should I change the code?

73
if not %1 == "" (

must be

if not "%1" == "" (

If an argument isn't given, it's completely empty, not even "" (which represents an empty string in most programming languages). So we use the surrounding quotes to detect an empty argument.

  • 1
    So it's basically a null value. I get it. – That Umbrella Guy Apr 16 '11 at 0:36
  • 1
    if not {%1} == {} is safer as "%1"=="" would be true if the value for %1 was quotes. – workabyte Mar 31 '16 at 17:43
  • 2
    @workabyte: Using curly braces as you suggest could be more confusing when %1 refers to a path or file, because unlike the brace characters { and }, double-quotes " can never appear in any Windows path or filename. So you'd potentially avoid trying to puzzle out things that resolve to {}} }} == {}. Perhaps more realistically, note that {{ea14c59a-889c-495b-8bb6-be78cf960e93}.txt} == {{ea14c59a-889c-495b-8bb6-be78cf960e93.txt}}, for example, is false. – Glenn Slayden Dec 9 '16 at 22:11
19

Surround your %1 with something.

Eg:

if not "%1" == ""

Another one I've seen fairly often:

if not {%1} == {}

And so on...

The problem, as you can likely guess, is that the %1 is literally replaced with emptiness. It is not 'an empty string' it is actually a blank spot in your source file at that point.

Then after the replacement, the interpreter tries to parse the if statement and gets confused.

12

You have to do the following:

if "%1" == "" (
    echo The variable is empty
) ELSE (
    echo The variable contains %1
)
  • 1
    The important part here is that the ELSE should be on the same line as the closing parentheses for the IF statement otherwise you'll get an error. – rook Mar 17 '17 at 16:19
8

Another related tip is to use "%~1" instead of "%1". Type "CALL /?" at the command line in Windows to get more details.

  • 3
    %~1 - expands %1 removing any surrounding quotes (") so no one else has to look it up. – Noumenon Dec 28 '16 at 19:29
4

An alternative would be to set a variable, and check whether it is defined:

SET ARG=%1
IF DEFINED ARG (echo "It is defined: %1") ELSE (echo "%%1 is not defined")

Unfortunately, using %1 directly with DEFINED doesn't work.

1

you have to do like this...

if not "A%1" == "A"

if the input argument %1 is null, your code will have problem.

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