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First time stackoverflow user but occasional lurker, hope you guys can help me out.

So the first part of my assignment is to drop all 'leading zeros' in a list.

ex: (0 0 0 0 0 1 0 1 0 1) -> (1 0 1 0 1)

To do this, I thought to use an IF statement to check whether the first element was a 0 or not, and to recursively call the rest of the list until the there were no more leading zeros. As I have basically no idea how to program in Scheme, through searching the internet, I came up with what you see below. However when I run it, DrRacket tells me there are no arguments- I assume this either a syntactical error.. or more likely, I have no idea what I'm doing. So, if you could help me out, I'd really appreciate it!

    >(define zz
    >  (lambda (n)
    >    (if (= (car (n)) 0)
    >        (zz (cdr (n)))
    >        ((n)))))
    >
    >(remove '(0 0 0 0 1 0 1 0))

The error I get in DrRacket is:

"procedure application: expected procedure, given: (0 0 0 0 1 0 1 0) (no arguments)"

Again, thanks a lot! (P.S. Sorry if the formatting is a little odd...)

EDIT

Okay, changing up some stuff, I now get a "expects type as 1st argument, given: (0 0 0 0 0 1 0 1 0); other arguments were: 0" error flagged at my if statement.

    >(define zz
    >  (lambda n
    >    (if (= (car n) 0)   <----- here
    >        (zz(cdr n))
    >        (n))))

EDIT 2

    >(define zz
    >  (lambda (n)
    >    (if (= (car n) 0)
    >        (zz (cdr n))
    >        n)))

It works, thank you very much!

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1 Answer 1

up vote 2 down vote accepted

(num) is not correct - you're trying to call 42 or whatever as a command. (Also, your if syntax is off; you may want to do read more code to get a better feel for the syntax).

This should compile:

(define remove
  (lambda (num)
    (if (= (car num) 0)
      (remove (cdr num))
      num)))

Parenthesis in Lisp are for calling functions, unless used in quotes.


Okay, the OP asked about a general rundown of the syntax for Scheme.

  • a - A symbol, which is looked up by the evaluator and substituted for its value. Some symbols (such as 42) evaluate to themselves.

  • 'a - This "quotes" the symbol and transforms it into (quote a). quote prevents its argument from being evaluated - instead, the value a is returned. Not the string "a", not the result of looking up a, a itself. This also works for lists ('(1 2 3))

  • (if <expr> <true-value> <false-value>) - This evaluates <expr>, and sees if its value is truthy or not, and executes the corresponding value.

  • (cond (<expr> <true-value>) ... (else <false-value>)) - This runs though its arguments, and evaluates the car of it to see if it is true. If it is, the value of evaluating the cdr is returned. Otherwise, it skips to the next value.

  • (define <name> <expr>) - Sets the value of evaluating the second argument to the name of the first argument.

  • (lambda <arg-list> <body>) - Creates a procedure which is the result of binding the arguments passed in to the names present in the second argument and evaluating the third argument.

  • (<func> <arg1> <arg2> ... <argn>) - If the evaluator finds out that none of the above patterns match, then it calls the car of the list as a function, with the arguments in the cdr.

share|improve this answer
    
@Scheme.Is.Strange Sorry - my call to = was off. Check the updated example. –  new123456 Mar 28 '12 at 23:36
    
Yep your code is perfect, do you mind explaining how scheme syntax works? I know my question is vague and asking a lot but just some tips would be nice. –  Scheme.Is.Strange Mar 28 '12 at 23:40
    
Okay, I guess I'll get more acquainted with Scheme, thanks a lot! –  Scheme.Is.Strange Mar 28 '12 at 23:46

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