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According to this, !==! is the not-equal string operator. Trying it, I get:

C:\> if "asdf" !==! "fdas" echo asdf
!==! was unexpected at this time.

What am I doing wrong?

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4 Answers 4

up vote 128 down vote accepted

try

if NOT "asdf" == "fdas" echo asdf

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Use NEQ instead.

if "asdf" NEQ "fdas" echo asdf
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7  
this requires command extensions to be turned on (They are by default on 2000+ but can be turned off system wide or as a parameter to cmd.exe) Normally you should turn them on with setlocal, but for a simple if not equal test, just use "if not", it goes back to the good old DOS days –  Anders Sep 14 '09 at 20:27

I know this is quite out of date, but this might still be useful for those coming late to the party.

Looking at the usage in your link, I'd say you misunderstood the way the !==! operator is supposed to work. It looks to me like you should be writing, !asdf==fdas! Though I still think the if not "asdf" == "fdas" suggestion is clearer.

I pulled this from the example code in your link:

IF !%1==! GOTO VIEWDATA
REM  IF NO COMMAND-LINE ARG...
FIND "%1" C:\BOZO\BOOKLIST.TXT
GOTO EXIT0
REM  PRINT LINE WITH STRING MATCH, THEN EXIT.

:VIEWDATA
TYPE C:\BOZO\BOOKLIST.TXT | MORE
REM  SHOW ENTIRE FILE, 1 PAGE AT A TIME.

:EXIT0

That first line compares %1 to empty string and then if they're not equal skips over to the processing block viewdata.

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Thanks jatrim.. Most definitely helpful for those searching for an answer, rather than asking the question again. It isn't like StackExchange locks off the ability to answer/comment due to age of questions, so think this is fully acceptable. –  user66001 Jun 19 '13 at 16:07
1  
The ! are used here in case %1 is empty, thus resulting in the test !==!, which is true. You could use %1.==. instead (almost any character would do) — the purpose being to make sure that both sides of the equality test has something to test. The !==! notation is definitely NOT a not-equal sign. Better stick with if not .... –  Goozak Sep 6 '13 at 14:22

Try:

if not "asdf" == "fdas" echo asdf

That works for me on Windows XP (I get the same error as you for the code you posted).

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