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PHP_ParserGenerator - bug in grammar or in the parser generator?

开发者 https://www.devze.com 2022-12-16 15:41 出处:网络
I\'m trying to create a parser for a simple language with the lemon port to PHP, and it works, almost.

I'm trying to create a parser for a simple language with the lemon port to PHP, and it works, almost.

The following grammar:

%name SP_
%declare_class { class SpecParser }
%token_prefix SP_
%include_class {
 public $retvalue = '<todo: error handling>开发者_高级运维';
 public function singleKey($elem) {
     end($elem);
     return key($elem);
 }
}
%parse_accept {
 $this->retvalue = $this->_retvalue;
}

%right ASSIGN.

start(A) ::= spec(B) . { A = B; }

spec(A) ::= top_stmt(B) . { A = B; }

top_stmt(A) ::= . { A=array('empty' => NULL); }
top_stmt(A) ::= conditional(B) . { A = B;}
top_stmt(A) ::= retval(B) . { A = B; }
top_stmt(A) ::= assignment(B) . { A = array('assignment' => B); }
top_stmt(A) ::= MOD STRING(B) top_stmt(C) . {C['rulename'] = B; A=B;}

conditional(A) ::= IF stmt_list(B) . { A = array('condbreak' => array('stmt_list' => B)); }
conditional(A) ::= IF stmt_list(B) stmt(C) . { A = array('condexec' => array('cond' => B,'exec' => C)); }

retval(A) ::= access(B) . { A = array('access' => B); }
retval(A) ::= invoke(B) . { A = array('invoke' => B); }

assignment(A) ::= access(B) ASSIGN expr(C) . {A = array('lval' => B, 'rval' => C);}

expr(A) ::= retval(B) . { A = array('retval' => B); }
expr(A) ::= NOT retval(B) . { A = array('!retval' => B); }

stmt(A) ::= expr(B) . { A = array('expr' => B); }
stmt(A) ::= assignment(B) . { A = array('assignment' => B); }

empty_stmt_list(A) ::= . {A = array();}
empty_stmt_list(A) ::= stmt(B) . {
    A = array(B);
}
empty_stmt_list(A) ::= empty_stmt_list(B) COMMA stmt(C) . {
    B[] = C;
    A = B;
}

stmt_list(A) ::= stmt_list(B) COMMA stmt(C) . {B[] = C; A=B; }
stmt_list(A) ::= stmt(B) . { A = array(B); }

invoke(A) ::= access(B) LPAREN empty_stmt_list(C) RPAREN . { A = array('target' => B,'args' => C); }

access(A) ::= VARIABLE(B) . { A = array('variable' => B); }

should parse inputs like:

  1. 'if $cond1,!$cond2,$cond3() $var = $this($a(),$inst1 = $b())'
  2. '$var'
  3. '%rulename $var'

While inputs like 1 and 2 work as expected, somehow, not understandable for me how, input 3 returns string(8) "rulename". I have no idea which reductions should take place for that to happen. Is it something wrong with the grammar, or shall I start debugging PHP_ParserGenerator itself?

Thanks


I must be very tired. The mistake is the bad assignment:

top_stmt(A) ::= MOD STRING(B) top_stmt(C) . {C['rulename'] = B; A=B;}

which should have been:

top_stmt(A) ::= MOD STRING(B) top_stmt(C) . {C['rulename'] = B; A=C;}
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