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I need to find out if a certain environment variable (let's say Foo) contains a substring (let's say BAR) in a windows batch file. Is there any way to do this using only batch file commands and/or programs/commands installed by default with windows?

For example:

set Foo=Some string;something BAR something;blah

if "BAR" in %Foo% goto FoundIt     <- What should this line be? 

echo Did not find BAR.
exit 1

:FoundIt
echo Found BAR!
exit 0

What should the marked line above be to make this simple batch file print "Found BAR"?

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3 Answers 3

up vote 11 down vote accepted

Of course, just use good old findstr:

echo.%Foo%|findstr /C:"BAR" >nul 2>&1 && echo Found || echo Not found.

Instead of echoing you can also branch elsewhere there, but I think if you need multiple statements based on that the following is easier:

echo.%Foo%|findstr /C:"BAR" >nul 2>&1
if not errorlevel 1 (
   echo Found
) else (
    echo Not found.
)

Edit: Take note of jeb's solution as well which is more succinct, although it needs an additional mental step to figure out what it does when reading.

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That's it, much appreciated! –  LCC Mar 30 '11 at 19:54

The findstr solution works, it's a little bit slow and in my opinion with findstr you break a butterfly on a wheel.

A simple string replace should also work

if "%foo%"=="%foo:bar=%" (
    echo Not Found
) ELSE (
    echo found
)

Or with inverse logic

if NOT "%foo%"=="%foo:bar=%" echo FOUND

If both sides of the comparision are not equal, then there must be the text inside the variable, so the search text is removed.

A small sample how the line will be expanded

set foo=John goes to the bar.
if NOT "John goes to the bar."=="John goes to the ." echo FOUND
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+1. Yes, I'm a bit unhappy with findstr at times due to performance as well (particularly noticeable in my bignum lib which checks numbers for correct format several times during computations – that quickly adds up). Didn't think of that solution. –  Joey Mar 30 '11 at 20:50
    
Random stuff: We both have problems with an unmatched quote in the haystack, though. –  Joey Mar 30 '11 at 20:59
1  
@Joey: If quotes are possible in the content, delayed expansion should be the solution –  jeb Mar 30 '11 at 21:02
    
Aaah, got my conditions wrong; ok, indeed, that solves it. –  Joey Mar 30 '11 at 21:14
    
Can anyone explain the seemingly backwards logic behind if not %var% == %var:str=% and how it returns true when you ARE looking for str in %var%? I can't quite make sense of it. –  mythofechelon Jan 7 '13 at 16:53

@mythofechelon: The %var:str=% part removes str from var. So if var contains str on the left side of the equation, it will be removed on the right side - thus the equation will result in "false" if str was found in var or "true" if str was not present in var.

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