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Right now I am using [^ \\&<>|\t\n]+ which will match any string that contains characters that are not a space, \, &, <, >, |, \t, \n. What I want to do is also allow you to escape any of these special characters so that (for example) \< or \& would still allow my entire string to be matched.

Should match:

abcdefghijk abcdef\&hdehud\<jdow\\

Should not match:

abcdefhfh&kdjeid abcdjedje\idwjdj

I found this pattern ([^\[]|(?<=\\)\[)+ which does the same thing for just the "[" character. I couldn't figure out how to extend this to apply to any additional characters.

Any idea how I can make the exception for characters preceded by a backslash?

If it makes any difference, I'm using this in Flex and C++ to tokenize a string for a shell. I believe I need to use negative look-behinds but I don't know how to do that with multiple characters.

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  • On the one hand, you say What I want to do is also allow you to escape any of these special characters, which would seem to also require spaces to be escaped. On other hand, you also say So valid strings would be: abcdefghijk abcdef\&hdehud\ ., where the space isn't escaped. – Moishe Lipsker Mar 16 '17 at 3:28
  • Sorry, fixed now! Those were supposed to be separate strings, not a string with a space in it. – Anav Gagneja Mar 16 '17 at 3:30
  • regex101.com/r/PeFm8A/1 – Sahil Gulati Mar 16 '17 at 3:36
6

You are already most of the way to the answer:

You are using the negated set [^ \\&<>|\t\n] to specifiy which characters may not be present, so all you have to do is then use the same set without the negation preceded by a \ to escape the character. That gets you this \\[ \\&<>|\t\n] which can be read as "a \ followed by any one of the items in the set" now combine the two and you get ([^ \\&<>|\t\n]|\\[ \\&<>|\t\n])+.

To break it down:

One or more of: [^ \\&<>|\t\n] or \\[ \\&<>|\t\n]

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  • That worked perfectly, thanks so much! I was trying to over complicate it by using an or with each individual special character in my negation but couldn't get it to work. This solution is simple and makes a lot of sense! – Anav Gagneja Mar 16 '17 at 3:36
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As usual, using a regular expression here is overkill. This is a simple text search:

const std::string target = "\\&<>|";
std::string iter = str.find_first_of(target);
while (iter != str.end()) {
    if (*iter != '\\')
        found_bad_character(*iter);
    iter = str.find_first_of(target, std::next(iter));
}
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  • This is used in Flex as a lexer for a shell so I needed the regex to specify my token but in other cases I could see your solution being helpful! – Anav Gagneja Mar 22 '17 at 3:40

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