2

Currently trying to see if a string, in this case the current line of a text file, contains a substring #. I am new to batch, so I am not sure exactly how I would do something like this. Here is the code set substring = #

for /f "delims=," %%a in (Text.txt) do (
    set string = %%a

    //check substring method        

    echo %string%

)
  • Do not put SPACEs around the = at the set command line, because they become part of the variable name and the (string) value otherwise... – aschipfl Dec 3 '15 at 23:32
  • @aschipfl OK, I already took that line out anyway. – FyreeW Dec 3 '15 at 23:38
  • I just saw that this issue is dealt with in this answer anyway... – aschipfl Dec 3 '15 at 23:52
4
echo %%a|find "substring" >nul
if errorlevel 1 (echo notfound) else (echo found)

Batch is sensitive to spaces in a SET statement. SET FLAG = N sets a variable named "FLAGSpace" to a value of "SpaceN"

The syntax SET "var=value" (where value may be empty) is used to ensure that any stray trailing spaces are NOT included in the value assigned. set /a can safely be used "quoteless".

  • I do not want to print out %%a|find "substring" >nul if errorlevel 1 (echo notfound) else (echo found), just only print the string if it does not contain # – FyreeW Dec 3 '15 at 23:08
  • 2
    Sorry- my crystal ball must be on the blink again. Replace notfound with %%a and lose the else clause. These commands must be within the for loop. – Magoo Dec 3 '15 at 23:14
  • Alright, it works now. Is there a way to do it without it printing out the code? – FyreeW Dec 3 '15 at 23:18
  • First line of a batch file is normally @echo off which suppresses the code display. – Magoo Dec 3 '15 at 23:21
  • Alright, thank you! – FyreeW Dec 3 '15 at 23:22
2

As an alternative to find, you can use string substitution, like this:

@echo off
setlocal EnableDelayedExpansion
set "substring=#"
for /f "delims=," %%a in (Text.txt) do (
    set "string=%%a"
    if "!string:%substring%=!"=="!string!" (
        rem string with substring removed equals the original string,
        rem so it does not contain substring; therefore, output it:
        echo(!string!
    )
)
endlocal

This approach uses delayed environment variable expansion. Type setlocal /? in command prompt to find out how to enable it, and set /? to see how it works (read variables like !string! instead of %string%) and what it means. set /? also describes the string substitution syntax.

  • See my edit: I accidently did not use delayed expansion for string although I described it... – aschipfl Dec 14 '15 at 3:50

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