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Does BNF or ABNF support negation. That is exclude certain members of the set? I did not see any such negation operator in its syntax.

For example, suppose S is the set of all alphanumeric strings that are not equal to "foo" What is the BNF for S?

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I think it is possible to define this in a very complicated way, by building the string using individual characters. –  Jus12 Jun 6 '12 at 21:24
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Yes, that you can do. You asked about negation in general. For your specific example, this grammar will do the trick: S = notF any* | 'f' notO any* | 'f' 'o' notO any* ; notF = 'a' | ... 'e' | 'g' | ... 'z' ; notO = 'a' | ... | 'n' | 'p' | ... 'z' ; any = 'a' | ... | 'z' ; –  Ira Baxter Jun 7 '12 at 7:22

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up vote 4 down vote accepted

Context free grammars are not closed under "difference" or "complements". So while you might decide to add an operator "subtract" to your BNF, the result will not be a context free grammar even if it has a simple way to express it. Consequence: people don't allow such operators in BNF grammars used to express context-free grammars.

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So how do existing compilers check that variables are not reserved words? –  Jus12 Jun 6 '12 at 21:17
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Recognizing key words is normally done in the lexer, not the parser. A lexer normally just orders the comparisons, so you look for keywords first. If and only if that fails, you have some other identifier. –  Jerry Coffin Jun 6 '12 at 21:18
    
More sophisticated schemes treat identifiers as keywords in the context in which they can be treated as keywords. This requires the lexer and the parser to interact to make the choice, and/or the parser to try both keyword and identifier alternatives, and choose the keyword alternative if it works. We do this with our parsers and it works quite nicely. –  Ira Baxter Apr 1 '14 at 20:04

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