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I have a problem in my program.

I have a condition that compare between 2 string:

(if (eq? (exp1) (exp2)))

When exp1 give me a string, and exp2 give me a string. To be sure, when I change the "eq?" to "=", it give me the next problem:

=: expects type <number> as 2nd argument, given: ie; other arguments were: ie.

When I'm running the program, the function doesnt enter to the first expression in the "if" function, and enter to the second one (meaning the condition is false).

What can I do?

Thank you.

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my interpreter has string=? –  knivil Apr 20 '11 at 12:59
    
when I change it to "string=?", it give me the next problem: string=?: expects type <string> as 1st argument, given: ie; other arguments were: ie. but "ie" is a string, No? –  Tom Apr 20 '11 at 13:05
    
just clarify - "ie" is one of the values in a long list, and I got it after I did (car list) –  Tom Apr 20 '11 at 13:05
2  
I think you're going to have to paste some more code for us to be able to debug this any further. –  dfan Apr 20 '11 at 13:12
    
Sorry, this is not the problem. I can't delete the question. –  Tom Apr 20 '11 at 13:19
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3 Answers

According to the Equivalence predicates section of R6RS, you should be using equal?, not eq?, which instead tests whether its two arguments are exactly the same object (not two objects with the same value).

(eq? "a" "a")                           ; unspecified
(equal? "abc" "abc")                    ; #t

As knivil notes in a comment, the Strings section also mentions string=?, specifically for string comparisons, which probably avoids doing a type check.

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Thank you, but I tried it. the same problem. it enter to the second exp (meaning equal? ie ie =>false) –  Tom Apr 20 '11 at 13:08
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Advice, possibly unwelcome :): In order to get good help, you need to distill your misunderstanding into a very small program that doesn't behave as you expect. In fact, doing this will often allow you to discover the source of your misunderstanding yourself.

In this case, for instance, try replacing (exp1) with the actual value that is the result of exp1. See if that helps you understand what's going on. If not, then post away, and you'll probably get more helpful responses.

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I wrote a little helper function for this problem.

; test if eq?
(define ==
  (lambda (x y)
    (if (and (string? x) (string? y))
      (string=? x y)
      (if (or (string? x) (string? y))
            (= 1 0) ;return false
            (equal? x y)))))
(define a "aString")
(define l '("aString" "aOtherString"))
(== (car l) a) ; true
(== 1 1) ; true
(== 1 0) ; false
(== "a" 1) ; false diff. type
(== "a" "b") ; false
(== "a" "a") ; true
(== '("a" "b") '("a" "b"))
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how is this different from equal? –  newacct Jan 11 '12 at 3:39
    
What @newacct said -- this is a (very obscure) implementation that works the same as equal?. BTW, you can use #f or #false (and usually also false) directly, instead of that (= 1 0). –  Eli Barzilay Jan 11 '12 at 7:29
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