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How can I do:

echo [-help | -h]: displays help

At the moment when I do it I get:

The syntax of the command is incorrect.

This works but

echo "[-help | -h]: displays help"

it also prints the quotes, and I don't want that.

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up vote 3 down vote accepted

Use this

echo [-help ^| -h]: displays help

The ^ escapes the pipe.

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good to know, thanks – Caner Jun 13 '12 at 14:28
    
On a side note, the ^ escape can also be used to escape < and > and ^ itself. – adarshr Jun 13 '12 at 14:28
    
No problem, glad to help. – Bali C Jun 13 '12 at 14:37

The escape character in DOS is (usually) ^

So try:

echo [-help ^| -h]: displays help

It's a bit weird though and lots of exceptions. See here: http://www.robvanderwoude.com/escapechars.php

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There are multiple ways:

  1. Escaping with carets
    You can escape any character (but not the percent) with a caret

    Echo [-help ^¦ -?]

  2. Using delayed expansion
    As the content of a delayed expansion isn't parsed any more, it can contain all characters.

    setlocal EnableDelayedExpansion set "helpStr=[ -help | -?]" echo !helpStr!

  3. Disappearing quotes
    Quotes can also escape special characters, but they be echoed also.
    Disappearing quotes works like normal quotes, but they will be replaced with nothing before echoing.

    3.1 With delayed expansion, you add !"=! anywhere you need a quote, this expression will be replaced with nothing, later

    setlocal EnableDelayedExpansion
    echo !"=![ -help | -?]

    3.2 Without delayed expansion you could use a FOR-loop

FOR %%^" in ("") do (
    echo %%~"[ -help | -?]`
 )
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The [-help | -h] means either -help or -h. Try running the command again, with -h as the only argument.

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I want to print text, i dont want to run it – Caner Jun 13 '12 at 14:23
1  
Aha. Can't you escape the whole line in quotes? – kragniz Jun 13 '12 at 14:24
    
then it prints the quotes – Caner Jun 13 '12 at 14:25
    
That would also output the quotes in DOS. Silly DOS. – Tom Carrick Jun 13 '12 at 14:27

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