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I need to test if a variable is set or not. I've tried several techniques but they seem to fail whenever %1 is surrounded by quotes such as the case when %1 = "c:\some path with spaces".

IF NOT %1 GOTO MyLabel // This is invalid syntax
IF "%1" == "" GOTO MyLabel // Works unless %1 has double quotes which fatally kills bat execution
IF %1 == GOTO MyLabel // Gives an unexpected GOTO error.

According to this site. These are the supported IF syntax types. So, I don't see a way to do it.

IF [NOT] ERRORLEVEL number command
IF [NOT] string1==string2 command
IF [NOT] EXIST filename command
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1  
On my systems (Windows 2003 as well as Windows 7), if "%1" == "" GOTO MyLabel doesn't fatally kill the execution of the script as long as %1 has an even number of double-quotes. I see that an odd number of double-quotes in %1 kills the execution of the script with this error: The syntax of the command is incorrect. The solution below that uses square brackets to solve the problem has been marked as the correct answer but it doesn't seem to be doing any better. That solution also fails with the same error when %1 has an odd number of double-quotes. –  Susam Pal Jan 7 '13 at 14:31
    
@SusamPal Interesting. Try the parenthesis version under it and see if that works. That one I tested more. I just updated the accepted answer a couple days ago. –  blak3r Jan 7 '13 at 18:25
    
Dan Story's answer seems to work fine indeed. I used the version using square brackets. –  Susam Pal Jun 7 at 5:04

7 Answers 7

up vote 68 down vote accepted

Use parentheses instead of quotes:

IF [%1] == [] GOTO MyLabel

Note: The original answer was:
IF (%1) == () GOTO MyLabel
@jeb pointed out this was insecure, and @Synetech suggested an alternative so I revised the answer.

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6  
parenthesis aren't secure! Content like & in %1will break the line –  jeb Dec 9 '11 at 16:45
3  
Unfrotunately jeb is correct; while parentheses were fine in DOS, the Windows command-prompt uses parentheses. However brackets and braces should work: if [%1]==[]… if {%1}=={}… –  Synetech Oct 21 '12 at 16:19
2  
Using other characters like if #%1#==## or if [%1]==[] is good so long as there are no spaces in the argument, otherwise you will get a …was unexpected at this time error. –  Synetech Feb 4 '13 at 19:41
2  
This doesn't work if the variable text has spaces within it. –  kungfujam Jul 1 at 16:34

You can use:

IF "%~1" == "" GOTO MyLabel

to strip the outer set of quotes.

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+1 I haven't tried that. But, that is GREAT to know. –  blak3r Mar 31 '10 at 14:28
4  
This is indeed a good way to do it. By using ~, you strip the outer quotes if they are present, but then add them back manually (ensuring only one set). Moreover, you have to use quotes if the argument contains spaces (I learned this the hard way when my previous version of using # or brackets instead of quotes caused arguments with spaces to throw a …was unexpected at this time error.) –  Synetech Feb 4 '13 at 19:39

One of the best semi solutions is to copy %1 into a variable and then use delayed expansion, as delayedExp. is always safe against any content.

set "param1=%1"
setlocal EnableDelayedExpansion
if "!param1!"=="" ( echo it is empty )
rem ... or use the DEFINED keyword now
if defined param1 echo There is something

The advantage of this is that dealing with param1 is absolutly safe.

And the setting of param1 will work in many cases, like

test.bat hello"this is"a"test
test.bat you^&me

But it will fail with strange contents like

test.bat "&"^&

If you want to be 99% bullet proof you could read How to receive even the strangest command line parameters?

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From IF /?:

If Command Extensions are enabled IF changes as follows:

IF [/I] string1 compare-op string2 command
IF CMDEXTVERSION number command
IF DEFINED variable command

......

The DEFINED conditional works just like EXISTS except it takes an environment variable name and returns true if the environment variable is defined.

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Yes, I actually tried this approach and from what I could tell this only works with ENVIRONMENT variables. Therefore, didn't work with %1 or a variable defined inside the batch file. –  blak3r Mar 31 '10 at 14:23
1  
That is only true for %1 and the likes. "Variables defined inside the batch file" actually are environment variables while the batch file is running, and you can use IF DEFINED on them. –  zb226 Mar 1 '13 at 13:20

I usually use this:

IF "%1."=="." GOTO MyLabel

If %1 is empty, the IF will compare "." to "." which will evaluate to true.

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3  
This is incorrect. This is the same thing as: IF "%1" == "" the reason for this post was if %1 itself has quotes this fails. –  blak3r Mar 31 '10 at 14:21
    
Are you trying to test if %1 is empty or if it has quotes? The question is unclear. My answer works if nothing is specified on the command line for %1. –  aphoria Mar 31 '10 at 18:41
    
> Are you trying to test if %1 is empty or if it has quotes? @aphoria, it has to be able to handle both. –  Synetech Oct 21 '12 at 16:17
    
I used this to work out if %1% had been set, worked nicely for me. Thanks, good answer! –  Charlie Aspinall Jan 17 at 16:33

Script 1:

Input ("Remove Quotes.cmd" "This is a Test")

@ECHO OFF

REM Set "string" variable to "first" command line parameter
SET STRING=%1

REM Remove Quotes [Only Remove Quotes if NOT Null]
IF DEFINED STRING SET STRING=%STRING:"=%

REM IF %1 [or String] is NULL GOTO MyLabel
IF NOT DEFINED STRING GOTO MyLabel


REM   OR   IF "." equals "." GOTO MyLabel
IF "%STRING%." == "." GOTO MyLabel

REM GOTO End of File
GOTO :EOF

:MyLabel
ECHO Welcome!

PAUSE

Output (There is none, %1 was NOT blank, empty, or NULL):


Run ("Remove Quotes.cmd") without any parameters with the above script 1

Output (%1 is blank, empty, or NULL):

Welcome!

Press any key to continue . . .

Note: If you set a variable inside an IF ( ) ELSE ( ) statement, it will not be available to DEFINED until after it exits the "IF" statement (unless "Delayed Variable Expansion" is enabled; once enabled use an exclamation mark "!" in place of the percent "%" symbol}.

For example:

Script 2:

Input ("Remove Quotes.cmd" "This is a Test")

@ECHO OFF

SETLOCAL EnableDelayedExpansion

SET STRING=%0
IF 1==1 (
  SET STRING=%1
  ECHO String in IF Statement='%STRING%'
  ECHO String in IF Statement [delayed expansion]='!STRING!'
) 

ECHO String out of IF Statement='%STRING%'

REM Remove Quotes [Only Remove Quotes if NOT Null]
IF DEFINED STRING SET STRING=%STRING:"=%

ECHO String without Quotes=%STRING% 

REM IF %1 is NULL GOTO MyLabel
IF NOT DEFINED STRING GOTO MyLabel

REM GOTO End of File
GOTO :EOF

:MyLabel
ECHO Welcome!

ENDLOCAL
PAUSE

Output:

C:\Users\Test>"C:\Users\Test\Documents\Batch Files\Remove Quotes.cmd" "This is a Test"  
String in IF Statement='"C:\Users\Test\Documents\Batch Files\Remove Quotes.cmd"'  
String in IF Statement [delayed expansion]='"This is a Test"'  
String out of IF Statement='"This is a Test"'  
String without Quotes=This is a Test  

C:\Users\Test>  

Note: It will also remove quotes from inside the string.

For Example (using script 1 or 2): C:\Users\Test\Documents\Batch Files>"Remove Quotes.cmd" "This is "a" Test"

Output (Script 2):

String in IF Statement='"C:\Users\Test\Documents\Batch Files\Remove Quotes.cmd"'  
String in IF Statement [delayed expansion]='"This is "a" Test"'  
String out of IF Statement='"This is "a" Test"'  
String without Quotes=This is a Test  

Execute ("Remove Quotes.cmd") without any parameters in Script 2:

Output:

Welcome!

Press any key to continue . . .
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Use "IF DEFINED variable command" to test variable in batch file.

But if you want to test batch parameters, try below codes to avoid tricky input (such as "1 2" or ab^>cd)

set tmp="%1"
if "%tmp:"=.%"==".." (
    echo empty
) else (
    echo not empty
)
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