Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

What I need to do is to break atom to tokens. E. g.:

tokenize_string('Hello, World!', L).

would unify L=['Hello',',','World','!']. Exactly as tokenize_atom/2 do. But when I try to use tokenize_atom/2 with non-latin letters it fails. Is there any universal replacement or how I can write one? Thanks in advance.

share|improve this question

1 Answer 1

up vote 2 down vote accepted

Well, you could write your own lexer. For example I can show you a lexer from my arithmetic expressions parser.

:- use_module(library(http/dcg_basics)).

%
% lexer
%

lex([H | T]) -->
    lexem_t(H), !,
    lex(T).

lex([]) -->
    [].

lexem_t(L) --> trashes, lexem(L), trashes.

trashes --> trash, !, trashes.
trashes --> [].

trash --> comment_marker(End), !, string(_), End.
trash --> white.

comment_marker("*)") --> "(*".
comment_marker("*/") --> "/*".

hex_start --> "0X".
hex_start --> "0x".

lexem(open) --> "(".
lexem(close) --> ")".
lexem(+) --> "+".
lexem(-) --> "-".
lexem(*) --> "*".
lexem(/) --> "/".
lexem(^) --> "^".
lexem(,) --> ",".
lexem(!) --> "!".

lexem(N) --> hex_start, !, xinteger(N). % this handles hex numbers
lexem(N) --> number(N). % this handles integers/floats
lexem(var(A)) --> identifier_c(L), {string_to_atom(L, A)}.

identifier_c([H | T]) --> alpha(H), !, many_alnum(T).

alpha(H) --> [H], {code_type(H, alpha)}.
alnum(H) --> [H], {code_type(H, alnum)}.

many_alnum([H | T]) --> alnum(H), !, many_alnum(T).
many_alnum([]) --> [].

How it works:

 ?- phrase(lex(L), "abc 123 привет 123.4e5 !+- 0xabc,,,"), write(L).
[var(abc), 123, var(привет), 1.234e+007, !, +, -, 2748, (,), (,), (,)]
share|improve this answer
    
With some modifications this exactly what I needed. Thank you! :) –  Shark Mar 27 '10 at 15:13

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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