0

What is the fastest (smaller code) way to get grammar tree ?

I am trying to get grammar tree. I've generated C# code based on my simple grammar:

grammar MyPascal;
options
{
    language=CSharp3;
    output=AST;
}

operator: (block | ID);
block   : BEGIN operator* END;
BEGIN   :'begin';
END     :'end';
ID      :('a'..'z')+;
WS      :( ' '
        | '\t'
        | '\r'
        | '\n'
        ) {$channel=HIDDEN;};

When i'am using ANTLR works for simple input text like:

input.txt:
begin
  abs
  qwe
  begin
    begin
    end
  end
end

i get nice picture of grammar tree.

Now i'am wonder if there any simple way to get tree structure of my "program" from C# without writing 1000s lines of code.

Here i'am trying to get grammar tree:

class Program
{
    static void Main(string[] args)
    {
        MyPascalLexer lex = new MyPascalLexer(new ANTLRFileStream(@"M:\input.txt"));
        CommonTokenStream tokens = new CommonTokenStream(lex);
        MyPascalParser g = new MyMyPascalParser(tokens);
        MyPascalParser.myprogram_return X = g.myprogram();                                       
        Console.WriteLine(X.Tree);  // Writes: nill
        Console.WriteLine(X.Start); // Writes: [@0,0:4='begin',<4>,1:0]
        Console.WriteLine(X.Stop);  // Writes: [@35,57:57='end',<19>,12:2]
    }
}
1

You'll have to "tell" ANTLR to build an AST, opposed to just a flat stream of tokens (simple parse tree).

See this SO Q&A that shows how to do this in C#.

Also, you should not use:

ID : ('a'..'z')*;

i.e.: let a lexer rule match an empty string, this might (or even will?) get you in trouble (it always matches!). You'll want to let it match at least one character:

ID : ('a'..'z')+;
  • You're right. I have cut some before asking question for compact size. I've fixed now these errors. – Astronavigator Apr 8 '11 at 16:22
  • :) I found answer to my question in this link. So i accept your answer. As in an example I've added 2 lines: 1: using Antlr.Runtime.Tree; 2: CommonTree Tree = (CommonTree)Q.Tree; And it works :) – Astronavigator Apr 8 '11 at 17:01
  • @Astronavigator, you're welcome, and good to hear you found the solution to your problem. – Bart Kiers Apr 8 '11 at 17:18

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.