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I am new to ANTLR and am trying to parse queries using the following

grammar SearchEngineQuery; 

options { language = CSharp2; output = AST; } 

tokens {
AndNode;
}

LPARENTHESIS : '('; 
RPARENTHESIS : ')'; 

AND    : 'and'; 
OR     : 'or'; 
ANDNOT : 'andnot'; 
NOT    : 'not'; 
NEAR    : 'near'; 


fragment CHARACTER : ('a'..'z'|'0'..'9'|'-'); 
fragment QUOTE     : ('"'); 
fragment WILDCARD  : ('*'|'?'); 
fragment SPACE     : (' '|'\n'|'\r'|'\t'|'\u000C'); 

WILD_STRING 
   : (CHARACTER)* 
     ( 
       ('?') 
       (CHARACTER)* 
     )+ 
   ; 
PREFIX_STRING 
   : (CHARACTER)+
     ( 
       ('*')  
     )+ 
   ; 
WS     : (SPACE) { $channel=HIDDEN; }; 
PHRASE : (QUOTE)(WORD)(WILDCARD)?((SPACE)+(WORD)(WILDCARD)?)*(QUOTE); 
WORD   : (CHARACTER)+; 

startExpression  : nearExpression; 
nearExpression     : andExpression (NEAR^ andExpression)*; 
andExpression 
  :  (andnotExpression        ->  andnotExpression) 
     (AND? a=andnotExpression -> ^(AndNode $andnotExpression $a))*  
  ; 

andnotExpression : orExpression (ANDNOT^ orExpression)*; 
orExpression     : notExpression (OR^ notExpression)* ; 
notExpression    : (NOT^)? (phraseExpression | wildExpression | prefixExpression | atomicExpression); 
phraseExpression : (PHRASE^);
wildExpression    : (WILD_STRING^); 
prefixExpression    : (PREFIX_STRING^); 
atomicExpression :  WORD | LPARENTHESIS! andExpression RPARENTHESIS!; 

This seems to work ok for general queries. However, the case of a near (b or c) needs to be actually handled as:

alt text

and a near (b or c and (d or e)) needs to be handled as:

alt text

I am unable to determine how to do this. Any help would be most appreciated.

Thanks

share|improve this question
    
What about a and (b or c)? Should that also be transformed into (a and b) or (a and c)? And a near (b or c and (d or e))? –  Bart Kiers Nov 19 '10 at 17:08
    
The a and (b or c) can be handled as it is. It is the near option that needs to be processed by breaking up the query. As for a near (b or c and (d or e)) should be ideally be broken up too. Sorry for the delay in responding. I am new to stackexchange and just kept looking at the answers value on this question in my profile. Now I know better. –  Puneet Nov 22 '10 at 13:00
    
One more thing, your grammar allows for a near x near (b or c), is that correct? If so, what AST should that produce? –  Bart Kiers Nov 23 '10 at 8:22
    
@Bart, a near x near (b or c) should be parsed as (a near (x near (b or c))) => (a near x near c) or (a near x near c). I know it can get pretty complex. I guess I will need to check on the complexity of the query and then decide if I can allow that query to be processed or stop execution of code and ask for a revised query to be input –  Puneet Nov 23 '10 at 10:13
    
@Puneet, hmmm, I see. There's quite a bit of AST re-ordering going on. I don't think this can be done in the grammar itself (either in the combined grammar or from a tree grammar), but I could be wrong of course... I'll think about it a bit more, but as of now, I'd say you'll have to manually reorder the AST yourself after creating it (see the API for CommonTree to see how to get a hold of the children, and other attributes of said class). Good luck. –  Bart Kiers Nov 23 '10 at 19:47
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1 Answer 1

You would probably be able to achieve this by using a multiple pass tree rewriting grammar. The rules should be fairly short.

something similar as this for the OR case:

orCaseRight: a=. NEAR ^(OR x=. y=.) -> ^(OR ^(NEAR $a $x) ^(NEAR $a $y));
orCaseLeft: ^(OR x=. y=.) NEAR a=. -> ^(OR ^(NEAR $a $x) ^(NEAR $a $y)); 

in topDown add an action that sets a rewrite flag, whenever a rule matched, so you can apply this grammar as long as the rewrite flag is set.

I use this to optimize/precalculate math expressions and it works like a charm.

share|improve this answer
    
Sorry, but how would I loop the grammar ? Can you explain this further ? –  Puneet Jan 29 '12 at 10:21
    
This you would do in your parser calling code. In mine it looks something like this: // simplify expressions while (true) { CommonTreeNodeStream nodes = new CommonTreeNodeStream(downup); ExpressionSimplifying expressionSimplifying = new ExpressionSimplifying(nodes); downup = (Tree) expressionSimplifying.downup(downup, false); if (!expressionSimplifying.did_rewrite) break; } –  stryba Jan 31 '12 at 10:30
    
Sorry for the code mess, return is not well supported in comments. Basically what I do is call the TreeRewriter with the result of the previous pass as long as the rewriter still rewrites something. –  stryba Jan 31 '12 at 10:35
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