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The similar question and the author's website give me solutions like this:

Identifier "identifier"
  = !ReservedWord [A-Za-z_]+

ReservedWord
  = "test"
  / "abc"

This solution can't parse an identifier like this "test_var".

In this example, the grammar !ReservedWord will exclusive all variables starting with "test" or "abc".

Thanks in advance.

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1 Answer 1

up vote 4 down vote accepted

ReservedWord succeeds, when a reserved word is complete, regardless of what follows. So the solution is to make it fail when there is a longer match that includes more identifier characters:

Identifier "identifier"
  = !ReservedWord [A-Za-z_]+

ReservedWord
  = ( "test" / "abc" ) ![A-Za-z_]
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Nice solution. It helps me a lot. –  PG_ Jul 31 '12 at 5:05
    
Isn't that terribly inefficient? –  Apalala Nov 17 '12 at 20:49

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