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I'm trying to parse my VHDL code for some additional checks.

I'm looking for a regular expression that looks for string literals. A string literal is enclosed by double quotation marks as so:

" {characters} "

The problem currently is the following requirement:

If a quotation-mark value is to be represented in the sequence of character values, then a pair of adjacent quotation marks must be written at the corresponding place within the string literal.

This means the following are legal string literals:

""""  
" random stuff "" random stuff "  

I'm not sure if :

("(("")*[^\n"]*)*")

covers it sufficiently

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so how are you dealing with escaped quotes, there's no point with """" being a legal string literal, so you can have this: """"""""""? it's a string literal, or it's just a double quote floating in space, you can't have it every which way. –  sweaver2112 Mar 5 '12 at 3:31
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If you aren't sure, you can just try your regex: find -name '*.vhdl' | xargs cat | perl -ne 'print if /regex/' > yourResult.txt Then see how the result differs from just searching for lines containing ": find -name '*.vhdl' | xargs cat | perl -ne 'print if /"/' > allQuotes.txt. Just counting the number of lines might be helpful: wc -l yourResult.txt allQuotes.txt –  nodakai Mar 5 '12 at 4:03
    
curious, sebs, do you not want to match this unescaped double quote as well? 'dkfasdfasdfasd"kjlkdsajf' ? why not? –  sweaver2112 Mar 5 '12 at 4:12
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@sweaver: In vhdl is no such thing as an escaped character. Also string literals can be only one line long. A newline is a seperator between lexical elements in VHDL. Your 'dkfasdfasdfasd"kjlkdsajf' is unvalid in VHDL. Single quotes can only enclose single characters. –  sebs Mar 5 '12 at 4:29
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You may want to consider a lexer/parser generator like ANTLR. –  user597225 Mar 5 '12 at 19:57

3 Answers 3

If you want to make it full proof, you may need a full lexer instead of a regular expression. The proposals I read here can cause false positives, for example:

a <= '"'; -- assigns the character " to signal a.

Your regex will match "'; -- assigns the character " here.

Then again, if your code does not contain any strange double quotes in comments or in character literals, or in strings, the simplest regex will work for you.

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I guess I could create a regex with multiple groups ruling out the '"' case like so. ('.')|([^"\n]|"")* Most regex engines evaluate the regex from left to right. If there is something in the second group it would be recognized as valid string literal. –  sebs Mar 5 '12 at 20:38
    
@sebs Your proposed regex does not yet take into account the quotes in comments (or block comments) or extended identifiers. It just gets complicated really fast. I wanted to point out that Regex might not be the right tool for the job. –  Philippe Mar 6 '12 at 8:06

I hope /"([^"]|"")+"/ will work for most of your need. Please try it.

Edit: + should be *. The OP himself knows regex better than me!

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you could try this: (pseudocode /regex/)

/(?<!["\\])"(\w\s)+"(?!")/

then use regex backreferences:

replace = "\"" + match.$1 + "\""

note: this expression makes a naive attempt to not match already escaped double quotes (look back and not see a \ or " , but since \\" would actually be a regular double quote preceded by a regular backslash, the more you think about it the more complicated it gets.

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